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The ROI of AI 2025: Google PPT

48 슬라이드

The ROI of AI 2025 - How AI Agents are Unlocking Business Value

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AI ROI
Agentic AI
AI agents
Generative AI
Business transformation

슬라이드 공유

설명

주요 주제

The ROI of AI 2025 - How AI Agents are Unlocking Business Value

주요 이점

  • •Evidence-based insights from 3,466 global senior business leaders on AI's measurable business impact
  • •Comprehensive data showing 88% of agentic AI early adopters achieving positive ROI on gen AI investments
  • •Clear blueprint from successful early adopters for scaling AI agents across organizations
  • •Proven strategies for implementing AI in five high-impact business areas: productivity, customer experience, business growth, marketing, and security
  • •Practical guidance on investment priorities, C-suite sponsorship, and overcoming implementation challenges
  • •Real-world case studies and quantifiable results from leading companies across multiple industries

대상 청중

  • •C-suite executives (CEO, CIO, CFO, CMO, CTO, CISO, CDO, CSO, COO)
  • •Senior business leaders and directors responsible for AI strategy and digital transformation
  • •IT directors and heads of innovation evaluating AI investments
  • •Business decision-makers in enterprises with $10M+ revenue and 100+ employees
  • •Industry leaders in retail/CPG, financial services, media/entertainment, telecom, healthcare, manufacturing, and public sector
  • •Technology strategists planning agentic AI deployment and scaling initiatives

사용 사례

  • •Building business cases for AI agent investments with data-driven ROI projections
  • •Executive presentations to secure C-suite sponsorship and budget allocation for AI initiatives
  • •Strategic planning sessions for scaling proven AI use cases across the organization
  • •Benchmarking organizational AI maturity against industry standards and early adopter practices
  • •Educational resource for understanding the evolution from generative AI to agentic AI systems
  • •Reference guide for prioritizing AI investments in high-ROI areas like productivity and customer experience
  • •Framework for addressing common AI implementation challenges around data security, integration, and governance

고유한 가치 제안

  • •Second annual comprehensive benchmark study tracking year-over-year AI adoption trends and ROI evolution
  • •Largest survey sample of 3,466 senior leaders across 25+ countries providing global AI insights
  • •Identifies agentic AI early adopters as distinct cohort with 88% ROI achievement rate vs 74% overall average
  • •Reveals 52% of gen AI users have already deployed AI agents in production, marking rapid mainstream adoption
  • •Documents shift from experimentation to strategic investment with 77% increasing AI spend as costs decrease
  • •Provides three-level AI agent maturity framework from simple tasks to multi-agent workflows
  • •Quantifies specific business impacts: 70% report productivity improvements, 63% see customer experience gains
  • •Demonstrates strong correlation between C-suite sponsorship and ROI success (78% vs 72%)
  • •Includes actionable AI agent use cases with step-by-step prompts and measured Google Cloud customer results
  • •Addresses critical implementation factors: 37% prioritize data privacy/security, 42% focus on change management

슬라이드 페이지 (48)

레이아웃, 주요 콘텐츠 및 시각적 요소를 포함한 각 슬라이드 페이지의 상세 보기.

페이지 1
Title Slide

Cover - The ROI of AI 2025

콘텐츠

Title slide featuring colorful 3D molecular-style visualization and main subtitle: 'How agents are unlocking the next wave of AI-driven business value' with Google Cloud branding

레이아웃 구조

Full-page cover design with large bold typography, vibrant abstract 3D graphics in pink, orange, cyan, and yellow colors creating depth, Google Cloud logo in top left

주요 시각적 요소

  • •3D abstract molecular/particle visualization with vibrant gradient colors
  • •Google Cloud logo and branding
  • •Bold sans-serif typography for title and subtitle
  • •Professional corporate design aesthetic
페이지 2
Executive Summary / Leadership Message

Executive Summary - Introduction from Oliver Parker

콘텐츠

Overview of AI's evolution from predictive to generative to agentic era, highlighting that 88% of agentic AI early adopters now see positive ROI. Explains shift from 'if' to 'how' companies should use AI, with focus on scaling proven use cases and building sophisticated AI agents. Written by Oliver Parker, VP Global Generative AI GTM at Google Cloud.

레이아웃 구조

Two-column layout with narrative text on left side, large 88% statistic with gradient bar on right side, abstract 3D graphics in background

주요 시각적 요소

  • •88% ROI statistic with blue-green gradient progress bar
  • •Abstract colorful 3D background elements continuing from cover
  • •Professional headshot area for Oliver Parker
  • •Current date reference: Monday, January 05, 2026
페이지 3
Key Findings / Executive Dashboard

Key Insights Overview

콘텐츠

Six major findings presented in colored cards organized by three chapters: (1) AI agents deployed at scale - 52% have agents in production, (2) Agentic AI early adopters enjoy significant advantage - 88% see ROI, (3) Gen AI continues to deliver returns - 74% see ROI on at least one use case, (4) ROI thriving across use cases - 39% see ROI on productivity, 37% on customer experience, 33% on sales/marketing, (5) Executive backing drives AI success - 78% with C-level sponsorship see ROI, (6) Challenges still present roadblocks - #1 consideration is data privacy and security

레이아웃 구조

Dark background with six colorful gradient cards (red to yellow to green to blue spectrum) arranged in grid, chapter labels at top, detailed footnotes at bottom

주요 시각적 요소

  • •Six gradient-colored insight cards with large percentage statistics
  • •Color progression from warm (red/orange) to cool (green/blue) tones
  • •Chapter organization labels (01, 02, 03)
  • •Comprehensive footnote citations for data sources
페이지 4
Methodology / Research Credentials

About This Report - Methodology Overview

콘텐츠

Research methodology description: 16-minute online survey of 3,466 senior business leaders from global enterprises with $10M+ revenue and 100+ employees. Conducted by Google Cloud and National Research Group between April 18-June 3, 2025. Comprehensive benchmark of gen AI impact on business and financial performance. Unless noted, statistics only include those using gen AI in production.

레이아웃 구조

Left side contains methodology text, right side features abstract 3D iridescent particle mesh visualization in purple, pink, and blue gradients

주요 시각적 요소

  • •3D iridescent mesh visualization suggesting data/network concepts
  • •Clean typography with clear hierarchy
  • •Key numbers highlighted: 3,466 leaders, $10M+ revenue, 100+ employees
  • •Survey timeframe: April 18-June 3, 2025
페이지 5
Research Methodology / Sample Demographics

Methodology Details and Geographic Distribution

콘텐츠

Detailed breakdown of survey respondents: 940 CEO/CIO, 1,097 CFO/CMO/CTO, 768 CISO/CDO/CSO/COO/Directors, 661 IT Directors/Heads of Innovation. Geographic distribution across 25+ markets with world map visualization. Robust industry representation across media/entertainment, retail/CPG, financial services, manufacturing, healthcare, telecom, and public sector.

레이아웃 구조

Left column contains detailed respondent breakdown and organization size criteria, right side shows world map with country-by-country participant counts, industries listed at bottom

주요 시각적 요소

  • •World map with highlighted countries in blue showing geographic coverage
  • •Participant count by country listed (US: 1,047, Canada: 200, UK: 175, etc.)
  • •Clean data tables with respondent role categories
  • •100+ employee and $10M+ revenue criteria badges
페이지 6
Table of Contents / Navigation

Table of Contents

콘텐츠

Four main report sections: (1) The agentic shift - page 07, (2) 5 proven areas where AI is delivering ROI - page 21, (3) Investment trends for an AI-ready future - page 38, (4) Your next steps - page 46

레이아웃 구조

Large bold black typography on white background for 'Table of contents', colored progress bar at top transitioning through spectrum, abstract blue/purple 3D particle wave visualization at bottom, four section titles with page numbers aligned right

주요 시각적 요소

  • •Rainbow spectrum progress bar (red, purple, blue, green, yellow)
  • •3D particle wave visualization in blue/purple gradient
  • •Large impactful typography for section titles
  • •Page number alignment for easy navigation
페이지 7
Chapter Divider / Section Break

Chapter 01 Divider - The Agentic Shift

콘텐츠

Chapter opening slide with large typography '01 The agentic shift' on orange gradient background transitioning from red-orange to yellow-green

레이아웃 구조

Full-page gradient background (warm orange tones), minimal text with '01' chapter number and 'The agentic shift' title, page number '7' in bottom right

주요 시각적 요소

  • •Vibrant orange-to-green gradient background
  • •Large bold typography with '01' chapter number
  • •Minimalist design focusing on chapter title
  • •Home icon navigation in top right
페이지 8
Key Finding / Concept Introduction

AI Agents Have Rapidly Emerged

콘텐츠

Explanation of how businesses are implementing AI technologies from simple chatbots to complex multi-agent systems, marking fundamental shift from AI that assists to AI that operates independently under human control. 52% of executives state their organizations using gen AI now also leverage AI agents. Includes definition box explaining that AI agents are specialized LLMs with specific roles, context, and objectives to independently plan, reason, and perform tasks.

레이아웃 구조

Left side contains narrative text and 52% statistic with pie chart visualization, right side features definition box with yellow accent and 3D golden particle mesh visualization at bottom

주요 시각적 요소

  • •52% pie chart in orange/yellow gradient colors
  • •Definition box with dark background for AI agents explanation
  • •3D golden particle mesh visualization suggesting network/complexity
  • •Home navigation icon
페이지 9
Framework / Maturity Model

Levels of AI Agent Maturity Framework

콘텐츠

Three-level maturity framework: Level 1 - Simple tasks (chatbots, information retrieval, image generation), Level 2 - AI agent applications (customer service AI agents, creative agents), Level 3 - Multi-agent workflows (agentic workflows, agent orchestration). Visual representation shows progression from basic to complex implementations.

레이아웃 구조

Three-column layout with gradient-colored cards (orange to yellow to green), each level has rounded pill-shaped examples, simple icon visualizations at bottom showing single elements progressing to interconnected networks

주요 시각적 요소

  • •Three color-coded maturity level cards with gradient progression
  • •Icon visualizations: single chat bubble → grouped circles → complex network diagram
  • •Rounded pill-shaped UI elements for examples
  • •3D yellow particle mesh in top right corner
페이지 10
Customer Quote / Testimonial

Wayfair Quote on AI Agent Value

콘텐츠

Featured quote from Fiona Tan, CTO of Wayfair: 'AI agents are applicable across a wide variety of use cases, and I believe every business has workflows where agentic AI can deliver meaningful value. It accelerates existing processes, driving measurable business impact.'

레이아웃 구조

Clean white background with large quotation mark, Wayfair logo, quote text in large typography, professional headshot of Fiona Tan with title underneath

주요 시각적 요소

  • •Large opening quotation mark
  • •Wayfair purple logo
  • •Professional executive headshot
  • •Clean minimalist design emphasizing the quote
  • •Name and title: Fiona Tan, CTO, Wayfair
페이지 11
Key Finding / Data Point

AI Agents Have Arrived

콘텐츠

Key statistic: 39% of executives say their organization has launched more than 10 AI agents. Supporting text explains that though core technologies were largely theoretical just 1-2 years ago, agentic AI is already in widespread deployment across industries and around the world. Includes quote from Velit Dundar, VP of Global eCommerce at Radisson Hotel Group about humans and machines having a truly symbiotic relationship.

레이아웃 구조

Left side contains headline and statistics with gradient progress bar, right side features quote box with Radisson Hotel Group logo and executive quote, abstract 3D visualization in background

주요 시각적 요소

  • •39% statistic with orange-yellow gradient progress bar
  • •Radisson Hotel Group logo
  • •Quote callout box design
  • •Abstract colorful 3D particle visualization as background element
  • •Professional headshot of Velit Dundar
페이지 12
Global Trends Analysis

The Global Footprint of AI Agents

콘텐츠

Analysis showing AI adoption accelerating at remarkable pace across organizations of every size, sector, and location. Explains that consistent emergence across diverse organizational types points to powerful trend toward widespread use. However, application varies by region based on different business imperatives - Europe prioritizes AI-enhanced tech support, JAPAC focuses on customer service, LATAM emphasizes marketing. Includes Deutsche Bank quote about AI agents supporting humans behind the scenes to improve financial performance.

레이아웃 구조

Left column contains narrative text and quote box, right side would show regional breakdowns (referenced but partially visible)

주요 시각적 요소

  • •Deutsche Bank logo in quote box
  • •Abstract purple/magenta 3D particle visualization
  • •Professional headshot of Christoph Rabenseifner
  • •Title: Chief Strategy and Innovation Officer TDI and Head of Corporate VC Group, Deutsche Bank
페이지 13
Data Visualization / Statistical Breakdown

AI Agent Adoption Rates by Region, Industry, and Organization Size

콘텐츠

Comprehensive data showing AI agent adoption rates: By Region - NorthAm 46%, LATAM 56%, Europe 47%, JAPAC 64%, MEA 59%; By Industry - Retail/CPG 51%, Financial Services 53%, Media/Entertainment 54%, Telecom 56%, Healthcare 44%, Manufacturing 56%, Public Sector 55%; By Organization Size - 100-499 employees 49%, 500-999 employees 56%, 1000+ employees 52%

레이아웃 구조

Three-column layout with icon headers (globe, building, people) and detailed percentage breakdowns for each category, footnotes at bottom, clean data visualization design

주요 시각적 요소

  • •Three category icons: globe for region, building for industry, people for org size
  • •Percentage data clearly displayed for each segment
  • •Consistent formatting across all three columns
  • •Comprehensive footnote citations
페이지 14
Use Case Analysis / Data Visualization

AI Agent Use Cases in Action

콘텐츠

Cross-industry AI agent use cases ranked by adoption: Customer service/experience 49%, Marketing 46%, Security ops/cybersecurity 46%, Tech support 45%, Product innovation/design 43%, Productivity/research 43%, Software development 40%, Finance/accounting 38%, Sales 35%, HR 31%, Personalization 29%, Legal 15%. From customer service and marketing to security operations and tech support, AI agents help people focus on work that matters by handling tedious tasks. Includes Morrisons quote about competitive advantage.

레이아웃 구조

Left side contains narrative text and Morrisons quote, right side displays horizontal bar chart with orange-to-yellow gradient bars showing adoption percentages for each use case

주요 시각적 요소

  • •Horizontal bar chart with gradient orange bars
  • •Morrisons logo and branding
  • •Professional headshot of Peter Laflin, Data & Analytics Director
  • •12 use cases ranked by percentage
  • •Quote callout design
페이지 15
Industry Analysis

AI Agent Adoption Varies Across Industries

콘텐츠

While AI agents are being deployed broadly, every industry has its own priorities as companies invest in use cases that deliver the most significant impact. This deployment represents a fundamental operational shift across the business landscape. Includes quote from Bruno de F. Melo e Souza, Director of Engineering, Data & AI at Globo, about opportunities everywhere in media/entertainment for improving media production flow from idea to distribution.

레이아웃 구조

Left side contains analysis text, center/right features quote box with Globo logo and abstract blue/green 3D particle visualization

주요 시각적 요소

  • •Globo logo (blue and white design)
  • •Large abstract 3D particle wave in teal/green gradient
  • •Professional headshot of Bruno de F. Melo e Souza
  • •Quote emphasis design
페이지 16
Comparative Data Analysis / Industry Benchmarking

Top 3 AI Agent Use Cases by Industry

콘텐츠

Detailed breakdown showing top 3 AI agent priorities by industry: Retail/CPG - Customer service 47%, Marketing 44%, Security ops 41%; Financial Services - Customer service 57%, Marketing 48%, Finance/accounting & Security ops (tied) 46%; Media/Entertainment - Security ops 47%, Software dev 46%, Product innovation 46%; Telecom - Security ops 47%, Tech support 46%, Customer service 45%; Healthcare - Tech support 49%, Productivity/research 44%, Security ops 43%; Manufacturing - Customer service/Marketing (tied) 56%, Productivity/research 55%, Quality control 54%; Public Sector - Tech support 56%, Customer service/Software dev (tied) 51%, Finance/accounting 51%

레이아웃 구조

Seven industry columns with icon headers, each showing top 3 use cases with percentages, color-coded from yellow to green across columns

주요 시각적 요소

  • •Seven industry-specific icons (shopping cart, bank, media, telecom, healthcare, manufacturing, government)
  • •Color gradient progression from yellow through green
  • •Consistent three-row format for each industry
  • •Clear percentage callouts
페이지 17
Key Finding / Comparative Analysis

The Early Adopter Advantage

콘텐츠

Within broader landscape of AI agent adoption, distinct cohort of early adopters is setting themselves apart. Early adopters dedicate at least 50% of future AI budget to AI agents and already have agents deeply embedded across operations. Key statistics: 82% of early adopter organizations have deployed more than 10 AI agents (vs 39% across all organizations), 78% have been leveraging gen AI in production for over a year (vs 52% across all organizations). Their top performance isn't chance - it's result of deliberate strategy centered on deep technical capability and organizational commitment.

레이아웃 구조

Left column contains definition and narrative text, right side displays two major statistics (82% and 78%) with horizontal bar comparisons showing early adopter vs overall percentages

주요 시각적 요소

  • •Two large percentage comparisons with gradient green bars
  • •Dotted line separators showing benchmark (39% and 52%)
  • •Clean data visualization design
  • •Comprehensive footnote citations at bottom
페이지 18
Customer Quote / Vision Statement

Indosat Quote on Personal AI Agents

콘텐츠

Featured quote from Vishal Gupta, Chief Procurement Officer at Indosat: 'We see all employees at Indosat having a personal agent to amplify our capabilities and improve our overall impact.'

레이아웃 구조

White background with large quotation mark, Indosat logo (pink flower design), quote text in large clean typography, professional headshot with title

주요 시각적 요소

  • •Indosat OOREDOO HUTCHISON logo with distinctive pink flower icon
  • •Large opening quotation mark
  • •Professional headshot of Vishal Gupta
  • •Minimalist design emphasizing the quote
페이지 19
Strategic Framework / Success Factors

Your Blueprint for AI Agent ROI

콘텐츠

Success of early adopters provides clear roadmap for organizations whether building business case or scaling existing programs. Leaders champion AI in production, sponsor deployment of multiple agents, and secure dedicated budgets for growth, translating into more consistent ROI. Key findings: 88% of agentic AI early adopters see ROI now on at least one gen AI use case (vs 74% across all organizations); Early adopter organizations have at least 50% of future AI budget allocated to agents; 39% of total annual IT spend allocated to AI (vs 26% average); Early adopters more likely to report significant value from gen AI across key areas including customer experience, business growth, security, and marketing; More likely to report ROI on all cross-industry agentic AI use cases.

레이아웃 구조

Left column shows large 88% vs 74% comparison with gradient bar, right side lists five checkmarked success factors in gray boxes

주요 시각적 요소

  • •88% vs 74% comparison with orange-to-green gradient bar
  • •Five gray checkmarked information boxes
  • •Dotted line separator at 74% benchmark
  • •Clean hierarchical information design
  • •Comprehensive footnote citations
페이지 20
Customer Quote / Strategic Perspective

Bayer Quote on ROI and Speed of Return

콘텐츠

Featured quote from Cristina Nitulescu, Head of Digital Transformation and IT at Bayer Consumer Health: 'You have to look at ROI as not just size of return but also speed of return. AI initiatives are sizable investments that are not commodities yet, so we have to look at where hyper-automation and scaling with AI is actually generating a return first. How fast is your investment coming back to the organization and what capabilities are you investing in now that will scale up and create more efficiencies or business transformation down the road?'

레이아웃 구조

White background with Bayer logo, extended quote text in large typography, professional headshot with title, abstract yellow/orange 3D visualization on right side

주요 시각적 요소

  • •Bayer logo (distinctive cross design in blue and green)
  • •Abstract yellow/orange 3D particle visualization
  • •Professional headshot of Cristina Nitulescu
  • •Extended quote format with emphasis on ROI concepts
페이지 21
Chapter Divider / Section Break

Chapter 02 Divider - 5 Proven Areas Where AI is Delivering ROI

콘텐츠

Chapter opening slide with large typography '02 5 proven areas where AI is delivering ROI' on yellow-to-green gradient background

레이아웃 구조

Full-page gradient background (warm yellow transitioning to green), minimal text with '02' chapter number and chapter title, page number '21' in bottom right

주요 시각적 요소

  • •Vibrant yellow-to-green gradient background
  • •Large bold typography with '02' chapter number
  • •Minimalist design focusing on chapter title
  • •Home icon navigation in top right
페이지 22
Key Findings Overview / Performance Metrics

The Virtuous Cycle in AI Implementation

콘텐츠

Overview of virtuous cycle where demonstrable ROI is accelerating adoption of gen AI for certain use cases, which in turn justifies even greater focus on those use cases. After 2024 proved gen AI works, 2025 is about building on that success with early adopters layering new AI applications on top of initial wins. Three key measures: ROI - 74% report within first year (unchanged YoY); Annual revenue increase - 53% of those reporting increased revenue estimate gains between 6-10% (vs 52% in 2024); Time to market - 51% note average 3-6 months from idea to production (vs 47% in 2024).

레이아웃 구조

Left side contains narrative text explaining the virtuous cycle, right side displays three circular progress indicators with statistics and YoY comparisons

주요 시각적 요소

  • •Three circular progress charts with green gradients
  • •ROI, Annual revenue increase, and Time to market categories
  • •Abstract teal/green 3D particle visualization at bottom left
  • •Clean percentage callouts with YoY comparisons
  • •Comprehensive footnote citations
페이지 23
Framework / Key Benefits Overview

Where Business Leaders See the Most Value

콘텐츠

Five key benefits emerged from global data set as having greatest overall gains attributed to gen AI: (1) Productivity, (2) Customer experience, (3) Business growth, (4) Marketing, (5) Security. While executives' estimates of gen AI value-add are generally more conservative than in 2024, a higher share report improved customer experience. These areas provide template for executives to re-imagine their organization's business functions once augmented with gen AI.

레이아웃 구조

Left column contains narrative explanation, right side displays five numbered boxes (01-05) in gradient colors from yellow through green, each labeled with a benefit category

주요 시각적 요소

  • •Five color-coded benefit categories in gradient progression
  • •Numbered boxes 01-05 with clear labels
  • •Color gradient from warm yellow to cool green
  • •Clean hierarchical design
페이지 24
Data Dashboard / Performance Metrics

Top Gen AI Impacts Across Business Areas

콘텐츠

Comprehensive data showing top gen AI impacts: (1) Productivity - 70% report improved productivity from gen AI (vs 71% in 2024); (2) Customer experience - 63% report improved customer experience (vs 60% in 2024); (3) Business growth - 56% report business growth (vs 63% in 2024); (4) Marketing - 55% report meaningful impact to marketing (new to 2025); (5) Security - 49% report security improvements (vs 56% in 2024). Business benefits are used to measure health of technology transformation initiatives and serve as leading indicators of financial performance.

레이아웃 구조

Top section shows five benefit categories with percentage comparisons, abstract colorful 3D visualization in top right corner, data presented in clean columnar format

주요 시각적 요소

  • •Five numbered categories (01-05) with gradient color coding
  • •Large percentage callouts for each category
  • •YoY comparison data in smaller text
  • •Abstract 3D rainbow particle visualization
  • •Comprehensive footnote citation
페이지 25
Customer Quote / Third-Party Validation

Globe Telecom Quote and IDC ROI Data

콘텐츠

Quote from Francis Pugeda, Director of AI Product Development at Globe Telecom: 'With new low-code tools, our experts in marketing, finance, or operations can build their own simple AI helpers to solve their specific problems.' Accompanied by IDC White Paper data showing 727% ROI achieved over three years on average by businesses with Google Cloud.

레이아웃 구조

Left side features Globe logo and quote, right side displays large 727% statistic with explanation text and IDC source citation

주요 시각적 요소

  • •Globe logo (blue circle with white design)
  • •Professional headshot of Francis Pugeda
  • •Large 727% ROI statistic
  • •IDC White Paper citation
  • •Quote callout design
페이지 26
Detailed Analysis / Use Case Deep Dive

Employee Productivity Re-imagined (Area 01)

콘텐츠

Detailed analysis of productivity improvements: 70% report improved productivity (vs 71% in 2024); 39% of executives reporting increased organizational productivity indicate their employee productivity has at least doubled as a result of gen AI (vs 45% in 2024); 39% saw ROI on gen AI use cases for individual productivity including emails, documents, presentations, meetings, chat (vs 34% in 2024). Among executives reporting increased productivity, higher share reported non-IT improvements year-over-year. Key areas where AI is driving ROI: IT processes/staff productivity 70%, Faster time to insight 61%, Non-IT processes/staff productivity 60%, Better accuracy 58%, Faster time to market 48%.

레이아웃 구조

Left column shows three major statistics with gradient progress bars, right side displays dark background with five horizontal bar charts showing specific productivity improvement areas

주요 시각적 요소

  • •Three prominent statistics: 70%, 39%, 39% with gradient bars
  • •Dark background section with five horizontal yellow-to-green gradient bars
  • •01 category indicator
  • •Comprehensive footnote citations
페이지 27
Use Case Example / Call to Action

AI Agent Use Case: Analyze Data Instantaneously

콘텐츠

Practical use case example - Objective: Get insights from data stored in Google Sheet to make better informed decisions. Action: Open side panel of Sheet containing data and click suggested prompt to analyze data, which will automatically review and analyze to provide overview and insights. Results with Google Cloud: $250k in average annual benefits per 1,000 employees; 50% more productive developers; 36% more productive end users. Includes quote from Natalie Bowman, Managing Director at Alaska Airlines about humanity and AI comfort.

레이아웃 구조

Left side shows use case box with objective and action steps plus 'Try this prompt' button, right side displays three key statistics from IDC study, Alaska Airlines quote at bottom

주요 시각적 요소

  • •Gray instruction box with clear objective/action format
  • •'Try this prompt' button with arrow
  • •Three key statistics highlighted: $250k, 50%, 36%
  • •Alaska Airlines logo
  • •Professional headshot of Natalie Bowman
  • •IDC White Paper citation
페이지 28
Detailed Analysis / Use Case Deep Dive

A New Standard in Customer Experience (Area 02)

콘텐츠

Customer experience analysis showing accelerating year-over-year improvement confirms AI's role as primary engine for user engagement: 63% report improved customer experience (vs 60% in 2024); 51% of executives reporting improved customer experience indicate improvement of 6-10% (vs 53% in 2024); 68% of retail/CPG organizations report gen AI solutions have added value to their customer experience (vs 57% in 2024); 37% saw ROI on gen AI use cases for customer experience and field service including chat, call centers, and in-field technician support (vs 34% in 2024). Improved customer experience areas: Increased user engagement 83% (-2% YoY), Improved user satisfaction/NPS 75% (-5% YoY).

레이아웃 구조

Left column shows four major statistics with gradient progress bars, right side displays dark background with two circular progress indicators showing specific customer experience improvements

주요 시각적 요소

  • •Four prominent statistics: 63%, 51%, 68%, 37% with gradient bars
  • •Dark background section with two large circular progress charts
  • •02 category indicator
  • •Green gradient progress visualizations
  • •Comprehensive footnote citations
페이지 29
Customer Quote / Use Case Perspective

Golden State Warriors Quote on Customer Experience

콘텐츠

Featured quote from Nick Manning, Director of Consumer Products at Golden State Warriors: 'For any business, the ultimate goal is to meet customers where they are. A significant advantage is having dependable gen AI consistently available through various channels such as email, text, and chat. Gen AI enables you to build customer experiences that effectively answer questions and complete tasks, eliminating the need for customers to wait in a queue to speak with a human.'

레이아웃 구조

White background with Golden State Warriors logo, extended quote text in large typography, professional headshot with title

주요 시각적 요소

  • •Golden State Warriors logo (blue and yellow circular design)
  • •Large opening quotation mark
  • •Professional headshot of Nick Manning
  • •Extended quote format emphasizing customer experience benefits
페이지 30
Use Case Example / Call to Action

AI Agent Use Case: Troubleshoot a Product Issue with a Customer

콘텐츠

Practical use case example - Objective: Help customer resolve common product issue and achieve positive resolution. Action: AI agent can locate knowledge base articles, show recent support tickets, warranty information, and recommend top troubleshooting tips. Results with Google Cloud: 207% three-year ROI from using Customer Engagement Suite with Google AI; 120 seconds saved per contact in first year, increasing to 130 seconds by third year; $2M increase in additional revenue in first year, doubling to $4M by third year from better routing and information. Includes quote from Leeza Constantoulakis, Chief Nursing Officer at Drive Health.

레이아웃 구조

Left side shows use case instruction box with 'Try this prompt' button, right side displays three key statistics from Forrester study, Drive Health quote at bottom

주요 시각적 요소

  • •Gray instruction box with objective/action format
  • •'Try this prompt' button with arrow
  • •Three key statistics: 207%, 120 seconds, $2M
  • •Drive Health logo (blue D design)
  • •Professional headshot of Leeza Constantoulakis
  • •Forrester TEI study citation
페이지 31
Detailed Analysis / Use Case Deep Dive

Fueling Your Business Growth (Area 03)

콘텐츠

Revenue growth analysis showing it is markedly higher within organizations that leverage AI in production: 56% report business growth due to gen AI (vs 63% in 2024). Revenue growth from gen AI comparison 2024 vs 2025: Increased overall annual revenue between 1-5%: 14% in 2024, 15% in 2025; Increased overall annual revenue between 6-10%: 52% in 2024, 53% in 2025; Increased overall annual revenue of more than 10%: 34% in 2024, 31% in 2025.

레이아웃 구조

Left side shows 56% headline statistic with abstract colorful 3D visualization at bottom, right side displays dark background table comparing 2024 vs 2025 revenue growth percentages across three tiers

주요 시각적 요소

  • •56% statistic with gradient progress bar
  • •03 category indicator
  • •Abstract 3D colorful particle visualization
  • •Dark background comparison table
  • •Green highlighted 2025 data for visual emphasis
페이지 32
Use Case Example / Call to Action

AI Agent Use Case: Optimize Stock for a Slow-Moving Product

콘텐츠

Practical use case example - Objective: Identify slow-moving product and take action to improve sales or manage inventory. Action: AI agent can show sales data and current inventory levels, analyze and compare trends, then suggest targeted clearance promotion or adjust stock ordering levels. Results: $1.4M in additional net revenue achieved, on average, by Google Cloud customers. Features large $1.4M statistic with abstract green 3D visualization.

레이아웃 구조

Large $1.4M statistic dominates left side with abstract green particle visualization, right side shows gray instruction box with objective/action format and 'Try this prompt' button

주요 시각적 요소

  • •Massive $1.4M typography as hero element
  • •Abstract green 3D particle visualization
  • •Gray instruction box format
  • •'Try this prompt' button with arrow
  • •IDC White Paper citation
페이지 33
Detailed Analysis / Use Case Deep Dive

Smarter, Nimbler Marketing (Area 04)

콘텐츠

Marketing analysis showing implementing AI in marketing workflows enables more effective campaigns, drives more leads, and increases conversion: 55% report gen AI has resulted in meaningful impact on marketing, helping to create campaigns and increase leads and conversion; 33% saw ROI on gen AI use cases for sales and marketing including field sales activities, marketing operations, and content creation (unchanged YoY). Improved marketing from gen AI across industries: Retail/CPG 59%, Financial Services 56%, Media/Entertainment 59%, Telecom 49%, Healthcare 48%, Manufacturing 58%, Public Sector 51%.

레이아웃 구조

Left column shows two major statistics (55% and 33%) with gradient progress bars, right side displays dark background with seven horizontal bar charts showing industry-specific marketing improvements

주요 시각적 요소

  • •Two prominent statistics: 55% and 33% with gradient bars
  • •04 category indicator
  • •Dark background section with seven yellow-to-green gradient bars
  • •Industry-specific data visualization
  • •Comprehensive footnote citations
페이지 34
Use Case Example / Call to Action

AI Agent Use Case: Conduct Competitor Research

콘텐츠

Practical use case example - Objective: Understand competitor strategies and draft analysis. Action: Use Google's Deep Research agent to research competitors' recent marketing campaigns and social media presence, draft analysis report and identify potential differentiation opportunities. Results with Google Cloud: 32% quicker content editing; 42% faster than commercially available gen AI to replicate tone of voice creation; 46% quicker content creation. Includes quote from Ian Hargreaves, Data Science Fellow at ATB Financial about reimagining content creation with AI.

레이아웃 구조

Left side shows use case instruction box with 'Try this prompt' button, right side displays three key statistics from IDC study, abstract blue/green 3D visualization on right, ATB Financial quote at bottom

주요 시각적 요소

  • •Gray instruction box with objective/action format
  • •'Try this prompt' button with arrow
  • •Three key statistics: 32%, 42%, 46%
  • •Abstract blue/green 3D particle visualization
  • •ATB Financial logo (blue square)
  • •Professional headshot of Ian Hargreaves
  • •IDC White Paper citation
페이지 35
Customer Quote / Use Case Perspective

Seattle Children's Hospital Quote on Marketing Data Extraction

콘텐츠

Featured quote from Zafar Chaudry, Chief Digital Officer & Chief AI and Information Officer at Seattle Children's Hospital: 'Gen AI excels at marketing-related tasks that require extracting data from a large database, such as audience building, journey orchestration, content creation, and designing targeted, personalized campaigns.'

레이아웃 구조

White background with Seattle Children's logo (orange fish design), quote text in large typography, professional headshot with title, abstract teal/green 3D visualization on right side

주요 시각적 요소

  • •Seattle Children's logo with distinctive orange fish icon
  • •Large opening quotation mark
  • •Professional headshot of Zafar Chaudry
  • •Abstract teal/green 3D particle wave visualization
페이지 36
Detailed Analysis / Use Case Deep Dive

Proactive Enterprise Security (Area 05)

콘텐츠

Security analysis showing AI threat detection and response can enhance security posture, especially against emerging threats: 49% report gen AI has resulted in meaningful impact to security posture (new to 2025). Improved security posture from gen AI: Improved ability to identify threats 77% (-5% YoY), Reduction in time to resolution 61% (-10% YoY), Improved intelligence and response integration 74% (new to 2025), Reduction in number of security tickets 53% (-12% YoY).

레이아웃 구조

Left column shows 49% headline statistic and four specific security improvements with gradient progress bars and YoY comparisons, each metric displayed with prominent percentage

주요 시각적 요소

  • •49% headline statistic
  • •05 category indicator
  • •Four security metrics with green gradient bars
  • •YoY comparison annotations
  • •Abstract 3D green mesh visualization in top right
  • •Comprehensive footnote citations
페이지 37
Use Case Example / Call to Action

AI Agent Use Case: Respond to a Critical Security Vulnerability

콘텐츠

Practical use case example - Objective: Quickly assess reported security vulnerability, coordinate fix, and communicate with stakeholders. Action: Agent gathers vulnerability reports, current security states, and pentest results. After assessing issue's severity, agent drafts report and creates support tickets to implement fix. Results with Google Cloud: $1.2M saved over three years by providing predictable cost model and enabling decommissioning of legacy on-prem security tools; 70% reduction in risk and cost of breach; 50% faster mean time to respond and 65% faster mean time to investigate for SecOps teams. Includes quote from Zafar Chaudry about security being perfect use case for gen AI.

레이아웃 구조

Left side shows use case instruction box with 'Try this prompt' button, right side displays three key statistics from Forrester study, Seattle Children's quote at bottom

주요 시각적 요소

  • •Gray instruction box with objective/action format
  • •'Try this prompt' button with arrow
  • •Three key statistics: $1.2M, 70%, 50%
  • •Seattle Children's logo
  • •Professional headshot of Zafar Chaudry
  • •Forrester TEI study citation
페이지 38
Chapter Divider / Section Break

Chapter 03 Divider - Investment Trends for an AI-Ready Future

콘텐츠

Chapter opening slide with large typography '03 Investment trends for an AI-ready future' on green-to-blue gradient background

레이아웃 구조

Full-page gradient background (green transitioning to blue), minimal text with '03' chapter number and chapter title, page number '38' in bottom right

주요 시각적 요소

  • •Vibrant green-to-blue gradient background
  • •Large bold typography with '03' chapter number
  • •Minimalist design focusing on chapter title
  • •Home icon navigation in top right
페이지 39
Strategic Priorities / Trend Analysis

Top 5 Business Objectives Within the Next 2-3 Years

콘텐츠

Businesses are revising priorities to align with AI-first future - investment is growing, and higher portion of AI budgets is being aimed at AI agent deployment. Top 5 business objectives comparing 2024 vs 2025: Increased operational efficiency (53% in 2024, 51% in 2025), Improved customer experience (52% in 2024, 50% in 2025), Increased employee productivity (52% in 2024, 49% in 2025), Greater AI agent deployment (New to 2025, 43% in 2025), Increased competitiveness/market share (50% in 2024, 41% in 2025). Includes quote from Cristina Nitulescu of Bayer about prioritizing agentic AI for the future.

레이아웃 구조

Left side contains narrative text and Bayer quote, right side displays horizontal bar chart comparing 2024 (gray) vs 2025 (blue/green gradient) for five business objectives

주요 시각적 요소

  • •Horizontal bar comparison chart with 2024/2025 side-by-side
  • •Green and blue gradient bars for 2025 data
  • •Bayer logo
  • •Professional headshot of Cristina Nitulescu
  • •'New to 2025' callout for AI agent deployment
  • •Comprehensive footnote citation
페이지 40
Financial Trends / Budget Analysis

Overall AI Spending is Rising

콘텐츠

AI is now mission-critical enterprise investment evidenced by two clear trends. As technology costs fall, overall spending is rising. These new investments are increasingly funded by reallocating capital from non-AI budgets, in addition to 26% mean percent of total annual IT spend already allocated for AI. Three key findings: 77% report their organization's gen AI spend has increased as technology costs fall (not fielded in 2024); 58% report their organization is allocating net new budget (without reducing other budgets) to fund gen AI investments (vs 61% in 2024); 48% are reallocating non-AI budget to fund gen AI investments (vs 44% in 2024).

레이아웃 구조

Left side contains headline and narrative text with abstract blue particle visualization at bottom, right side displays three statistics with gradient progress bars on dark background

주요 시각적 요소

  • •Three prominent statistics: 77%, 58%, 48% with gradient bars
  • •Abstract blue particle mesh visualization
  • •Dark background for statistics section
  • •Green gradient progress bars
  • •Comprehensive footnote citations
페이지 41
Investment Priorities / Strategic Framework

Top Investment Areas to Accelerate AI Adoption

콘텐츠

Strategic investment priorities ranked: 42% Align business and technology to support change management for user adoption of AI; 41% Enhance quality of data and knowledge management; 40% Upskill staff, hire talent, and develop right outsource partnerships; 37% Provide right tooling and compute resources for AI; 33% Govern and manage risk of AI; 31% Deploying AI agents; 29% Reconsider organizational structure and operating models for implications of AI; 28% Measure AI impact. Includes quote from Oliver Dörler, Chief Data and AI Officer at Commerzbank about prioritizing AI use cases with greatest ROI.

레이아웃 구조

Left side displays dark background with eight horizontal investment priorities shown as gradient bars with percentages, right side features Commerzbank quote on white background

주요 시각적 요소

  • •Eight horizontal bars with green-to-blue gradient
  • •Dark background for investment priorities
  • •Highlighted box around 'Deploying AI agents' (31%)
  • •Commerzbank logo (yellow triangle in black square)
  • •Professional headshot of Oliver Dörler
  • •Comprehensive footnote citation
페이지 42
Strategic Success Factor / Leadership Analysis

ROI Continues to Need C-Suite Sponsorship

콘텐츠

The biggest returns come when AI is aligned to clear business goals. Formalization of AI strategy is most evident in stability and strength of executive sponsorship. Similar to last year's findings, C-suite sponsorship remains crucial for successful AI adoption. Executives who report their organization has comprehensive executive alignment are consistently more likely to see tangible ROI from their AI initiatives. Includes quote from Eric Lambert, VP Legal and Employment Counsel at Trimble about defining what ROI means beyond financial returns.

레이아웃 구조

Left side contains narrative text explaining importance of sponsorship, right side features Trimble quote with logo on white background

주요 시각적 요소

  • •Trimble logo (black geometric design)
  • •Professional headshot of Eric Lambert
  • •Quote emphasis design
  • •Clean white background for quote section
페이지 43
Comparative Analysis / Success Factor Validation

C-Level Sponsorship Strongly Correlates with Seeing ROI on Gen AI

콘텐츠

Data comparing organizations with vs without comprehensive C-suite sponsorship: 2024 - Orgs with C-suite sponsorship 78%, Orgs without 71%; 2025 - Orgs with C-suite sponsorship 78%, Orgs without 72%. Key finding: 78% of executives who report their organization has C-level sponsorship report seeing ROI now on at least one gen AI use case in 2025. Even more telling is significant increase in strong alignment between gen AI adoption and C-suite level sponsorship - which grew from 69% in 2024 to 73% in 2025. Includes quote from Anaterra Oliveira, VP of Technology at Dasa about C-level sponsorship being essential.

레이아웃 구조

Left side shows comparative bar chart for 2024 and 2025 with green gradient bars, top right displays 78% statistic, bottom section features Dasa quote

주요 시각적 요소

  • •Comparative horizontal bars showing 78% vs 71% (2024) and 78% vs 72% (2025)
  • •Green gradient progress bars
  • •78% callout statistic
  • •DASA logo
  • •Professional headshot of Anaterra Oliveira
  • •Comprehensive footnote citations
페이지 44
Challenge Analysis / Risk Factors

Key Challenges to Consider

콘텐츠

For many organizations, top challenges with AI are rooted in foundational work required to support them. Overcoming complexities of systems integration and meeting high standards for data security represent most significant hurdles. Solution lies in adopting modern, integrated data strategy that prioritizes strong governance and security protocols from start. Over 1 in 3 indicate that data privacy and security is top consideration for LLM providers. Includes quote from Christoph Rabenseifner of Deutsche Bank about difficulty of deploying AI agents while covering enterprise security, compliance and other requirements.

레이아웃 구조

Left side contains narrative text and 'Over 1 in 3' callout, right side features Deutsche Bank quote on white background

주요 시각적 요소

  • •Deutsche Bank logo (blue square with diagonal line)
  • •Professional headshot of Christoph Rabenseifner
  • •Quote emphasis design
  • •Footnote citation
페이지 45
Vendor Selection Criteria / Decision Framework

Top 3 Factors in Considering LLM Providers

콘텐츠

Key factors when considering LLM providers: #1 Data privacy and security 37%; #2 Integration with existing systems 28%; #3 Cost 27%. Includes quote from Natalie Bowman of Alaska Airlines about biggest security concern being risk of bad actors getting access to data or LLM hallucinating/changing it, leading to loss of true view of data in vicious cycle.

레이아웃 구조

Left side features Alaska Airlines quote, right side displays three factors with gradient green bars showing percentages on white background

주요 시각적 요소

  • •Alaska Airlines logo (blue text with tail icon)
  • •Professional headshot of Natalie Bowman
  • •Three horizontal bars with green gradients
  • •Clear percentage callouts: 37%, 28%, 27%
  • •Footnote citation
페이지 46
Chapter Divider / Section Break

Chapter 04 Divider - Your Next Steps

콘텐츠

Chapter opening slide with large typography '04 Your next steps' on blue gradient background

레이아웃 구조

Full-page gradient background (green transitioning to blue), minimal text with '04' chapter number and chapter title, page number '46' in bottom right

주요 시각적 요소

  • •Vibrant blue gradient background
  • •Large bold typography with '04' chapter number
  • •Minimalist design focusing on chapter title
  • •Home icon navigation in top right
페이지 47
Action Framework / Implementation Checklist

The AI Agent ROI Checklist

콘텐츠

Seven-point checklist for AI agent success: (1) Find your executive champions - Cultivate C-suite sponsorship to advocate for AI initiatives, clear roadblocks, and align to results; (2) Demonstrate value to secure AI budget - Build compelling business case for why AI deserves its own investment; (3) Create your AI rulebook now, not later - As AI use grows, so do risks. Establish clear, enterprise-wide guidelines to secure data, protect IP, and ensure compliance as you scale; (4) Start with biggest wins - Not all AI projects are created equal. Focus energy on building AI agents that can automate repeatable tasks to deliver clear ROI; (5) Build trust in AI from day one - First, get your data house in order with robust data governance and enterprise security framework. Second, always keep human-in-the-loop; (6) Give your AI agents the tools to be useful - For AI agent to do work, it needs access to internal enterprise systems like CRM or Drive. Grant it secure, governed access; (7) Invest in your talent and internal AI education programs - Most successful companies don't just buy technology, they build skills.

레이아웃 구조

Two-column layout with checkmarked items, each containing strategic guidance with linked keywords, abstract blue/purple 3D visualization in top right corner

주요 시각적 요소

  • •Blue checkmark icons for each item
  • •Linked/underlined key terms for emphasis
  • •Two gray background boxes containing checklist items
  • •Abstract blue/purple 3D particle visualization
  • •Clean hierarchical structure
페이지 48
Call to Action / Closing Slide

Call to Action - Ready to See ROI from AI?

콘텐츠

Final call-to-action slide with large text 'Ready to see ROI from AI?' and two action options: 'Get in touch' and 'Share this report' with arrow icon. Abstract colorful gradient visualization (blue, green, yellow) in background on right side.

레이아웃 구조

Dark background with large white typography on left side, abstract colorful gradient 3D visualization on right side, two call-to-action links at bottom left, Google Cloud logo in top left

주요 시각적 요소

  • •Large impactful headline typography
  • •Abstract gradient 3D visualization in blue/green/yellow tones
  • •Two underlined CTA links
  • •Google Cloud logo
  • •Dark background for contrast
  • •Share icon next to 'Share this report'

자주 묻는 질문

이 슬라이드 및 기본 프레젠테이션 콘텐츠에 대한 일반적인 질문.

What is agentic AI and how does it differ from generative AI?

Agentic AI represents the evolution beyond generative AI. While generative AI creates content based on prompts, agentic AI involves specialized LLMs that have specific roles, context, and objectives to independently plan, reason, and perform tasks with access to data, function call APIs, and can interact with other AI agents. The report defines three levels of AI agent maturity: Level 1 (Simple tasks like chatbots), Level 2 (AI agent applications like customer service agents), and Level 3 (Multi-agent workflows with agent orchestration). This marks a shift from AI that simply assists to AI that can operate independently under human control and guidance.

What ROI can organizations realistically expect from implementing AI agents?

According to the 2025 research, 88% of agentic AI early adopters (organizations dedicating at least 50% of their future AI budget to agents) now see positive ROI on gen AI investments, compared to 74% across all organizations. Specific results include: 70% report improved productivity, 63% see better customer experience, 56% experience business growth, and 53% of those with increased revenue report gains between 6-10%. IDC's research shows Google Cloud customers achieved 727% ROI over three years on average. The time to ROI is also improving, with 51% noting average time from idea to production is 3-6 months.

How widespread is AI agent adoption currently?

AI agent adoption has reached mainstream status remarkably quickly. The research shows that 52% of executives whose organizations use gen AI have already deployed AI agents in production, with 39% reporting their organization has launched more than 10 AI agents. Among agentic AI early adopters, 82% have deployed more than 10 agents. Adoption varies by region (JAPAC leads at 64%, followed by MEA at 59%, LATAM at 56%), by industry (Manufacturing 56%, Telecom 56%, Public Sector 55%), and is strong across all organization sizes (56% for 500-999 employee companies).

What are the top use cases where AI agents are delivering the most value?

The research identifies five proven areas where AI is delivering measurable ROI: (1) Productivity - 70% report improvements, with AI agents helping with emails, documents, presentations, and research; (2) Customer Experience - 63% see improvements through AI-powered chat, call centers, and field service support; (3) Business Growth - 56% report revenue increases, with 53% seeing 6-10% gains; (4) Marketing - 55% report meaningful impact on campaign creation, lead generation, and content development; (5) Security - 49% see improvements in threat detection, response time (61% faster), and incident reduction. Cross-industry use cases include customer service (49%), marketing (46%), security ops (46%), and tech support (45%).

How much should organizations budget for AI initiatives?

The report shows that successful organizations are making substantial AI investments. The average organization allocates 26% of total annual IT spend to AI, while agentic AI early adopters dedicate 39% of IT spend to AI initiatives. Importantly, 77% of organizations report their gen AI spending has increased even as technology costs fall. In terms of funding approach, 58% are allocating net new budget (without reducing other budgets), while 48% are reallocating non-AI budgets to fund gen AI investments. Early adopters ensure at least 50% of their future AI budget is specifically allocated to AI agents, demonstrating the strategic priority of agentic systems.

What role does C-suite sponsorship play in AI success?

C-suite sponsorship is crucial for AI ROI success. The data shows that 78% of executives from organizations with comprehensive C-level sponsorship report seeing ROI now on at least one gen AI use case, compared to 72% for organizations without such sponsorship. Strong alignment between gen AI adoption and C-suite level sponsorship has grown from 69% in 2024 to 73% in 2025. The top investment priority identified is to 'align business and technology to support change management for user adoption of AI' (42%), emphasizing that executive champions are needed to advocate for AI initiatives, clear roadblocks, secure dedicated budgets, and align efforts to measurable business results.

What are the biggest challenges organizations face when implementing AI agents?

The research identifies several key challenges: (1) Data privacy and security - the #1 consideration when evaluating LLM providers (37% rank it in top 3 factors); (2) Integration with existing systems - 28% cite this as a top concern; (3) Cost - 27% identify this as a major factor. Other significant challenges include enhancing data quality and knowledge management (41% priority), upskilling staff and hiring talent (40%), providing right tooling and compute resources (37%), and governing/managing AI risk (33%). The solution lies in adopting a modern, integrated data strategy that prioritizes strong governance and security protocols from the start, with always keeping a human-in-the-loop for oversight.

How can my organization get started with AI agents to maximize ROI?

Based on the research, follow this blueprint: (1) Find your executive champions - cultivate C-suite sponsorship; (2) Start with the biggest wins - focus on AI agents that can automate repeatable tasks with clear ROI potential; (3) Build trust from day one - get your data house in order with robust governance and enterprise security, always keeping humans in the loop; (4) Give agents the tools to be useful - grant them secure, governed access to internal systems like CRM or Drive; (5) Create your AI rulebook now - establish clear enterprise-wide guidelines for data security, IP protection, and compliance; (6) Demonstrate value to secure budget - build a compelling business case showing how early adopters achieve 88% ROI rates; (7) Invest in talent - the most successful companies build skills, not just buy technology. The average time from idea to production is 3-6 months for successful organizations.

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