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KPMG: The Agentic AI Advantage - Finance Agents That Move the Numbers

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The Agentic AI Advantage: Finance Agents That Move the Numbers

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KPMG
Agentic AI
Finance
AI agents
CFO

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説明

メイントピック

The Agentic AI Advantage: Finance Agents That Move the Numbers

主な利点

  • •Provides a comprehensive framework for understanding and deploying AI agents in finance functions
  • •Introduces the KPMG TACO Framework (Taskers, Automators, Collaborators, Orchestrators) for classifying finance AI agents
  • •Includes practical examples of finance agent applications across record-to-report, procure-to-pay, order-to-cash, and treasury
  • •Offers a 6-step action plan for accelerating agent adoption with governance and trust considerations
  • •Features survey data showing 65% of companies piloting AI agents and 99% planning production deployment

ターゲットオーディエンス

  • •CFOs and Finance Directors
  • •Finance transformation leaders
  • •Accounting and advisory professionals
  • •Internal audit and risk management teams
  • •Technology leaders overseeing finance modernization

使用例

  • •Finance function AI strategy development and roadmapping
  • •Executive briefings on agentic AI adoption in finance
  • •Board presentations on AI agent governance and trust frameworks
  • •Training workshops on finance AI agent classification and capabilities
  • •Consulting engagements on finance process automation with AI agents

独自の価値提案

  • •Written specifically for the Ghana finance market context with local regulatory considerations (digital tax, e-VAT, Data Protection Commission)
  • •KPMG TACO Framework provides a structured four-tier classification system for finance AI agents with increasing complexity
  • •Covers four foundational pillars: Strategy, Workforce, Governance/Trust, and Technology/Data/Security
  • •Includes MCP (Model Context Protocol) explanation for cross-agent communication standards
  • •Features KPMG GenAI Value Assessment model built from 17 million companies and 3 billion data points

スライドページ (26)

レイアウト、主要コンテンツ、視覚要素を含む各スライドページの詳細ビュー。

ページ 1
title slide

Cover - The Agentic AI Advantage: Finance Agents That Move the Numbers

コンテンツ

Title slide with KPMG branding. Subtitle: What to build, how to scale and how to measure value. KPMG Thought Leadership, February 2026.

レイアウト構造

Left-aligned title text with AI robot face illustration on right, deep blue/purple gradient background

主要な視覚要素

  • •KPMG logo
  • •AI humanoid robot face with circuitry
  • •Blue-purple gradient
  • •February 2026 date
ページ 2
foreword / executive letter

Foreword - At KPMG, the Future is Agent-Centric

コンテンツ

Foreword by Reindolf Annor, Partner at KPMG Accounting Advisory Services. AI moving from tools to agents that take action in finance. Focus on outcomes: quality financial data, faster close, stronger controls. Trust is non-negotiable. Start with small use cases, prove value, then scale.

レイアウト構造

Navigation bar at top, three-column text layout with author photo and bio at bottom right

主要な視覚要素

  • •Section navigation bar
  • •Author headshot
  • •Three-column dense text
  • •KPMG footer
ページ 3
table of contents

Contents

コンテンツ

Table of contents with eight sections: What a Finance AI Agent is (04), Era of agentic finance (05), Value at stake (07), Four ways to unlock value (08), Spectrum of agents evolving (10), Foundation for finance agent journey (14), Practical next steps (23), How KPMG can help (26).

レイアウト構造

Two-column numbered contents list with blue numbers, abstract wave graphic at bottom

主要な視覚要素

  • •Large blue page numbers
  • •Clean typography
  • •Blue wave/particle graphic at bottom
ページ 4
definition / concept

Do You Really Know What a Finance AI Agent Is

コンテンツ

Definition of a Finance AI Agent: a digital worker that fulfils finance objectives by combining LLMs with planning, orchestration, data retrieval, and governance. Reads structured and unstructured data, applies accounting policies and tax rules, takes action in systems, learns from feedback.

レイアウト構造

Large title, three-column capability description, architecture diagram at bottom showing AI agents + LLM + Instructions + Planning + Knowledge + Tools

主要な視覚要素

  • •AI Agent at a glance architecture diagram
  • •Blue-purple gradient banner
  • •Icon-labeled components
ページ 5
market data / survey results

The Era of Agentic Finance Has Already Begun

コンテンツ

KPMG Quarterly Pulse Survey data: 65% of companies piloting AI agents (up from 37% last quarter), 99% planning production deployment, but only 11% have implemented in production. GenAI builds digital assistants; agentic AI fully automates.

レイアウト構造

Hero banner with AI robot image, two circular stat graphics (65%, 99%), and explanatory text right

主要な視覚要素

  • •AI robot hero image
  • •Circular 65% and 99% donut charts
  • •Purple hero banner
  • •Survey citations
ページ 6
market context / value proposition

The Value at Stake

コンテンツ

AI adoption in Ghana growing 28% annually since 2017. National AI Strategy (2023-2033) and One Million Coders Program. Global AI market expected to grow 25-fold from $189B to $4.8T by 2033. KPMG GenAI Value Assessment: 17 million companies, 3 billion data points. Agentic AI best positioned for high-complexity tasks.

レイアウト構造

Split layout - Ghana AI context on purple background left, KPMG GenAI Value Assessment steps right with icons

主要な視覚要素

  • •Purple background panel
  • •Four assessment step icons
  • •Ghana market statistics
ページ 7
content / value proposition

Four Ways Finance AI Agents Can Unlock Value (Part 1)

コンテンツ

Two of four value propositions: 1) Agents widen the aperture for automation - taking on tasks like invoice checking, journal preparation, reconciliation, VAT validation, credit rules. 2) Agents do not sleep - continuous operation, parallel processing, responding to off-hour events.

レイアウト構造

Large title with two sections, each with icon and descriptive text

主要な視覚要素

  • •Blue icons for each section
  • •Blue accent text for Unlock Value
  • •Clean section dividers
ページ 8
content / value proposition

Four Ways Finance AI Agents Can Unlock Value (Part 2)

コンテンツ

Two more value propositions: 3) Agents are wired for change - adapt to new workflows, reduce change management needs, auto-adjust to policy changes. 4) Agents convert knowledge into action - capture tacit expertise into policies and playbooks, then act on them for reporting, collections, compliance.

レイアウト構造

Continuation layout matching previous slide with two sections and icons

主要な視覚要素

  • •Blue section icons
  • •Cont'd label in title
  • •Clean section dividers
ページ 9
framework introduction

The Spectrum of Agents Is Evolving to Meet Critical Needs

コンテンツ

KPMG TACO Framework introduction: Taskers, Automators, Collaborators, Orchestrators. Progressive classification by complexity. Consistency in core components (LLMs, knowledge, MCP) but key distinctions in goal complexity. Concept of centralized AI factory.

レイアウト構造

Split layout - text description left, 3D pyramid/mountain TACO framework diagram right showing four tiers

主要な視覚要素

  • •3D TACO pyramid diagram with four colored tiers
  • •Axis labels (memory, complexity, value)
  • •Blue/pink/purple color scheme
ページ 10
framework detail / case study

Taskers and Automators - Detailed View

コンテンツ

Taskers: single goals, low complexity, clear instructions, trusted data. Automators: complex goals across many systems, tacit knowledge, manage dependencies. Case study: online trading company streamlined procure-to-pay with KPMG and Ema multi-agent system (accrual process: hours instead of 10 days by 3 FTEs).

レイアウト構造

Three-column layout - Taskers left, Automators center, case study right. Example applications listed below each.

主要な視覚要素

  • •Colored Tasker/Automator icons
  • •Gray case study panel
  • •Bulleted example applications
ページ 11
framework detail

Collaborators and Orchestrators - Detailed View

コンテンツ

Collaborators: adaptive teammates working with people on multi-dimensional goals. Orchestrators: advanced control towers coordinating many agents across entities and markets. Each TACO agent is inherently a multi-agent system with sub-agents.

レイアウト構造

Three-column - Collaborators left, Orchestrators center, TACO explanation right. Example applications below.

主要な視覚要素

  • •Colored Collaborator/Orchestrator icons
  • •Gray explanation panel
  • •Bulleted example applications
ページ 12
comparison table / framework

KPMG TACO Framework Overview - Comparison Table

コンテンツ

Comprehensive comparison table across Taskers, Automators, Collaborators, and Orchestrators. Rows: Overall complexity, Primary use, Planning capabilities, Value propositions, Required knowledge and tools including MCP needs.

レイアウト構造

Full-width comparison table with four columns (one per agent type) and five rows of criteria

主要な視覚要素

  • •Color-coded column headers (blue gradient)
  • •Structured comparison matrix
  • •MCP complexity progression
ページ 13
section introduction

Setting the Foundation for Your Finance Agent Journey

コンテンツ

Agentic AI may be more disruptive than generative AI. Outcomes can be set within 12-36 months. Four foundations to address: Strategy, Workforce, Governance/Trust, Technology/Data/Security.

レイアウト構造

Large title, silhouette photo of person looking at digital screen, text callout box on right

主要な視覚要素

  • •Futuristic silhouette photo
  • •Blue-bordered text callout
  • •Purple accent in title
ページ 14
foundation detail / strategy

Foundation 1: Strategy

コンテンツ

Three strategic pillars: Review enterprise strategy (shorten cycles, test scenarios, quantify value), Shape agent strategy (decide posture, select high-value areas, use simple measures), Evolve partner ecosystem (choose trusted providers, balance platforms with specialists).

レイアウト構造

Strategy icon with three-column guidance layout, reference citations at bottom

主要な視覚要素

  • •Strategy icon
  • •Three-column action guidance
  • •Blue wave photo at bottom
ページ 15
foundation detail / workforce

Foundation 2: Workforce (Part 1)

コンテンツ

Codify the ways you work: divide into structured work (near-term agent potential) and tacit work (harder but higher impact). 78% would use agentic AI for complex data analysis, 66% for routine admin. Functions benefiting most: IT (76%), operations (56%), risk/compliance (56%), finance (39%), marketing (35%).

レイアウト構造

Two-column with Workforce section left, Driving Adoption panel right with bullet points

主要な視覚要素

  • •Workforce icon
  • •Gray panel with adoption guidance
  • •Survey statistics
  • •Blue wave photo
ページ 16
foundation detail / workforce

Foundation 2: Workforce (Part 2)

コンテンツ

Change management: behavioral approaches over top-down mandates. Fluid hybrid organization: agents as digital co-workers with reporting lines and performance management. Examples: month-end close agents, order-to-cash credit rules, procure-to-pay three-way match.

レイアウト構造

Three-column with change management left, hybrid org center, human-agent examples right with icons

主要な視覚要素

  • •Three finance process icons
  • •Gray example panel
  • •Workforce continuation layout
ページ 17
foundation detail / governance

Foundation 3: Governance and Trust

コンテンツ

AI agents require more stringent controls and Trusted AI principles. Four areas: Elevate security and privacy (stress testing, bias detection, fail-safe mechanisms), Avoid ethical violations (establish ethics protocols early), Put humans on-the-loop (not in-the-loop for autonomous agents).

レイアウト構造

Governance icon with three-column guidance layout, handshake icon

主要な視覚要素

  • •Handshake/trust icon
  • •Three-column governance guidance
  • •Blue wave photo at bottom
ページ 18
foundation detail / technology

Foundation 4: Technology, Data, and Security (Part 1)

コンテンツ

Ensure proprietary data is accessible, high quality, and agents can interact with each other. Build vs Buy vs Partner analysis for acquiring agents. Build: customization and control but requires expertise. Start building agentic supply chain.

レイアウト構造

Technology icon, two-column with data foundation left, Build option detail right

主要な視覚要素

  • •Technology/data icon
  • •Build option panel with icon
  • •Blue wave photo
ページ 19
foundation detail / technology

Foundation 4: Technology, Data, and Security (Part 2)

コンテンツ

Buy: rapid execution, 67% preferred method per KPMG survey, but limited customization and potential obsolescence. Partner: combines benefits of both, shares risk and cost, but less control. Key questions for evaluating which avenue to take.

レイアウト構造

Two-column continuation with Buy option and Partner option details, data foundation guidance left

主要な視覚要素

  • •Buy and Partner option panels with icons
  • •Data foundation bullet points
  • •MCP reference
ページ 20
foundation detail / technology

Foundation 4: Technology, Data, and Security (Part 3) - MCP

コンテンツ

Agent identity and security: unique identity, scoped permissions, runtime isolation, auditable actions. Common standards for cross-agent communication using MCP (Model Context Protocol). MCP components: Client, Server, Transport. Enables smaller, more targeted AI systems.

レイアウト構造

Two-column with security guidance left, MCP explanation and three-component diagram right

主要な視覚要素

  • •MCP component flow diagram (Client > Server > Transport)
  • •Component icons
  • •Security bullet points
ページ 21
section introduction

Practical Next Steps to Accelerate Agent Adoption

コンテンツ

Most companies still exploring or piloting. Need clear vision, solid rationale for scaling, and accelerated data transformation and Trusted AI governance. Photo of professional working at computer screens.

レイアウト構造

Large title, three bullet points on blue overlay over photo of person coding

主要な視覚要素

  • •Professional coding photo
  • •Blue text overlay
  • •Purple accent in title
ページ 22
action plan

Six Next Steps - Steps 1 and 2

コンテンツ

Step 1: Articulate the vision - define how agents transform the business, identify pain points. Step 2: Start agentic pilots - three approaches: Focus on hot spots, Go deep into a function, Broad utilisation across value stream.

レイアウト構造

Two numbered sections with icons and detailed guidance text

主要な視覚要素

  • •Blue numbered step icons
  • •Blue underline accents
  • •Clean text hierarchy
ページ 23
action plan

Six Next Steps - Steps 3, 4, and 5

コンテンツ

Step 3: Scale agents within key functions using KPMG TACO Framework. Step 4: Evolve Trusted AI governance playbook with living catalog and monitoring. Step 5: Implement Trusted AI evaluations with AI system cards, purple teams, and trust scores.

レイアウト構造

Three numbered sections with icons and guidance text

主要な視覚要素

  • •Blue numbered step icons
  • •Blue underline accents
  • •Governance and evaluation focus
ページ 24
action plan / conclusion

Six Next Steps - Step 6 and Closing

コンテンツ

Step 6: Establish agentic talent performance metrics - evaluate pilot impact, gather stakeholder feedback, develop clear performance metrics, implement telemetry. Closing quote: laying groundwork now positions organizations to supercharge operations and businesses.

レイアウト構造

Single step section with closing italic quote in bordered callout box

主要な視覚要素

  • •Blue step icon
  • •Bordered quote callout
  • •Italic closing statement
ページ 25
services / CTA

How KPMG Can Help

コンテンツ

Five service areas: AI Strategy (vision and business case), AI Technology (replicable proof-of-concept, TACO Framework), AI Jumpstart (rapid solutions, proof-to-scale), AI Workforce (upskilling, governance), AI Trust (safe scaling, 10 ethical AI pillars).

レイアウト構造

Five service cards in grid layout with icons and bullet points, blue introduction text at top

主要な視覚要素

  • •Five service area cards with icons
  • •Dashed connecting lines between services
  • •Blue accent headers
ページ 26
contact / closing

Contact - Authors and Team

コンテンツ

Three contacts: Reindolf Annor (Partner, Accounting Advisory Services), Nathaniel Adjin-Tettey (Associate Director), Frank Osei Tutu (Assistant Manager). All KPMG Ghana with phone and email. Social media links.

レイアウト構造

Three-column contact cards on purple gradient background with headshots, social media icons at bottom

主要な視覚要素

  • •Three professional headshots
  • •Purple gradient background
  • •Social media icons
  • •KPMG copyright notice

よくある質問

このスライドと基礎となるプレゼンテーションコンテンツに関する一般的な質問。

What is this presentation about and who published it?

This is a KPMG Thought Leadership paper titled The Agentic AI Advantage: Finance Agents That Move the Numbers, published in February 2026. It explains what finance AI agents are, how they fit into the Finance Delivery Model, and how organizations can begin their AI adoption journey in a structured and safe manner, with a focus on the Ghana market.

What is the KPMG TACO Framework for AI agents?

TACO stands for Taskers, Automators, Collaborators, and Orchestrators. It is a four-tier classification system for AI agents based on increasing complexity: Taskers handle single goals with clear instructions, Automators manage multi-step processes across systems, Collaborators work alongside humans on complex goals, and Orchestrators coordinate many agents across entities and markets as advanced control towers.

What are the four ways finance AI agents can unlock value?

The four ways are: 1) Agents widen the aperture for automation by taking on tasks like invoice checking and reconciliation, 2) Agents do not sleep and can operate continuously 24/7, 3) Agents are wired for change and adapt to new workflows without extensive retraining, and 4) Agents convert knowledge into action by capturing tacit expertise and turning it into coordinated operations.

What survey data is included about AI agent adoption?

According to the KPMG AI Pulse Survey Q1 2025, 65% of companies are already piloting AI agents (up from 37% the previous quarter), 99% are planning to put agents into production, but only 11% have actually implemented agents in production so far.

What are the four foundations for a finance agent journey?

The four foundations are: 1) Strategy - review enterprise strategy, shape agent strategy, evolve partner ecosystem, 2) Workforce - codify work processes, drive adoption, manage organizational change, 3) Governance and Trust - elevate security and privacy, avoid ethical violations, implement human-on-the-loop oversight, and 4) Technology, Data, and Security - build robust data platforms, strengthen agent identity, and adopt standards like MCP.

What are the six practical next steps for accelerating agent adoption?

The six steps are: 1) Articulate the vision for AI agent integration, 2) Start agentic pilots focusing on hot spots or deep function embedding, 3) Prepare to scale agents within key functions using the TACO Framework, 4) Evolve your Trusted AI governance playbook, 5) Implement Trusted AI evaluations with system cards and purple team testing, and 6) Establish agentic talent performance metrics with telemetry and continuous improvement.

How many slides does this presentation contain and what is the design style?

The presentation contains 26 slides with a professional KPMG design aesthetic featuring a blue and white color scheme with purple accents, futuristic AI robot imagery, clean typography with large bold section titles, structured comparison tables, and consistent navigation bars. It includes diagrams like the TACO pyramid framework and MCP architecture diagram.

Does this presentation cover Model Context Protocol (MCP)?

Yes, the presentation dedicates content to explaining MCP as a standard for cross-agent communication. It describes the three core components: MCP Client (AI app connecting to servers), MCP Server (programs leveraging data sources and systems), and MCP Transport (communication layer between clients and servers). The TACO Framework also maps MCP complexity requirements for each agent tier.

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