Artificial Intelligence/Financial Artificial Intelligence

Financial Artificial Intelligence

Put AI to Work. Protect the Institution. Demonstrate the Governance.

Artificial intelligence is changing how financial institutions serve clients, manage risk and compete. Gregg Global helps broker-dealers, investment advisers, banks, credit unions, insurers and fintechs identify where AI can create meaningful value, select the appropriate technologies, securely integrate AI into financial workflows, establish governance and validate results. We begin with the challenge, not the technology.

The Opportunity Is Larger Than Automation

The question is not where an institution can use AI. It is where AI can improve the way financial work gets done.

Research & AnalyticsClient Service & Advisory SupportUnderwriting Support Fraud & AML Detection SupportRegulatory Reporting SupportPortfolio & Account Administration Operations AutomationRisk & Compliance

AI should enhance institutional capability, not simply add another technology layer.

From Financial Objective to Responsible AI

The Gregg Global Financial AI framework.

01

Assess

02

Prioritize

03

Architect

04

Implement

05

Secure

06

Govern

07

Verify

08

Evolve

Human Oversight & Accountability Across the AI Lifecycle
ConfidentialitySecurityPrivacyAccuracy Regulatory RequirementsFiduciary DutyClient RequirementsAuditability

Core areas

  • Financial AI Readiness & Opportunity Assessment
  • Architecture selection
  • Private and controlled AI
  • Workflow transformation
  • AI security and Shadow AI
  • AI vendor risk
  • Regulatory intelligence and compliance support
  • Governed/reliable AI
  • PROP/hybrid architecture
  • Agentic AI
  • Human oversight
  • Verification and ongoing leadership

Start With the Work. Not the Technology.

Financial AI Readiness & Opportunity Assessment

Before selecting technology, Gregg Global helps organizations understand what they are trying to accomplish, which workflows create the greatest opportunity, what information is involved, what technology is appropriate, and where fiduciary and professional judgment must remain. The result is a prioritized Financial AI roadmap connecting use cases, technology, information, governance and implementation.

AI Strategy & ReadinessExisting AI UtilizationShadow AIWorkflow Opportunities Information & Data EnvironmentSecurityModel Risk AI GovernanceVendor RiskHuman OversightBusiness Value

AI Does Not Remove the Regulatory Obligations Attached to Financial Information

Select an institution type.

Applicability depends on registration status, charter, activities and jurisdiction. As of today, most financial AI oversight sits at the guidance and supervisory-priority level rather than as a single binding AI rule — precision matters, so we distinguish final requirements from guidance, proposals and withdrawn rules.

Banking

Model Risk Management for AI

The interagency Model Risk Management guidance was revised in April 2026 (OCC Bulletin 2026-13, jointly issued with the Federal Reserve and FDIC), replacing the prior SR 11-7 / OCC 2011-12 framework. Notably, the revised guidance explicitly excludes generative and agentic AI from its formal scope, leaving a supervisory gap institutions must self-govern until dedicated guidance is issued.

OCC Bulletin 2026-13Federal Reserve / FDIC (joint)Traditional/statistical AI-ML: in scopeGenAI & agentic AI: not yet formally covered

Not Every Financial Problem Requires the Same AI

The Right AI for the Right Financial Work.

LLM

Strong applications may include research, summarization, natural-language client communications, and drafting.

The Right AI for the Right Financial Work.

Sensitive Information May Require a Different AI Environment

Private & Controlled AI

Publicly available AI is not the only option. Solutions may include private AI environments, on-premises AI, controlled knowledge environments, and role-based permissions.

The appropriate environment depends upon the information, use case, security requirements and the institution's risk profile.

Discuss Private AI

Your AI Environment May Be Larger Than Your Approved Technology List

Shadow AI Governance & Control

Advisors and staff can adopt AI applications faster than an institution can approve and govern them. A policy is important. But policy alone does not control technology.

Discover → Assess → Approve → Govern → Enforce → Monitor

Discuss AI Governance & Shadow AI

AI Can Assist the Advisor. It Does Not Replace Fiduciary Judgment.

As AI systems become more capable and autonomous, fiduciary responsibility becomes more important, not less.

AI Capability
  • Research
  • Analyze
  • Extract
  • Summarize
  • Draft
  • Recommend
  • Automate
Human Fiduciary Judgment
  • Review
  • Verify
  • Interpret
  • Approve
  • Advise
  • Decide
  • Take responsibility

Use AI to expand institutional capability while preserving the judgment fiduciary and suitability obligations require.

Financial AI Risk Is About More Than Hallucinations

Responsible Financial AI requires controls appropriate to the use case.

Accuracy & CompletenessModel RiskSource Reliability Data Privacy & SecurityCybersecurityUnauthorized AI Use Vendor & Third-Party RiskBias & Fair LendingModel Governance & Validation Agent PermissionsRegulatory ComplianceClient Suitability & Fiduciary Duty Board & Examiner OversightHuman Oversight

From Plausible Output to Verifiable Work

Governed & Verifiable AI

Some financial applications require more than a fluent response — what source supports this statement, was the information authorized, can the result be reproduced, was human approval required?

Define

Establish authoritative information, users, permissions and objectives.

Ground

Connect factual claims to approved sources.

Govern

Apply permissions, policies, constraints, approvals and escalation.

Prove

Preserve supporting evidence and a reviewable record.

When AI Can Act, Governance Must Move With It

Agentic AI

AI is progressing from systems that answer questions toward agents capable of initiating tasks, accessing tools, sequencing activities and taking actions within financial workflows. That creates opportunity — and changes the control environment.

Identity

Who or what is acting?

Access

What information can it access?

Permission

What tools can it use?

Action

What actions can it take?

Approval

When is human approval required?

Evidence

How is the action documented?

Put AI Into the Workflow

Financial AI Workflow Transformation

The value is not simply having AI. It is improving the work.

Identify → Design → Integrate → Govern → Train → Measure

Client Onboarding & KYCResearch & AnalyticsUnderwriting Support Fraud & AML Monitoring SupportRegulatory ReportingPortfolio & Account Administration Client CommunicationsMarketing Compliance Review

AI Is Becoming Part of the Client Relationship

A mature AI program can become part of the institution's value proposition.

Clients, boards and examiners increasingly care not simply whether an institution uses AI, but how it affects accuracy, information protection, fairness, pricing and service. Institutions should be prepared to explain where AI is used, how client information is protected, and where human review occurs.

AI Does Not Stand Still. Neither Should Your Strategy.

Financial AI Leadership & Advisory

AI StrategyTechnology MonitoringVendor EvaluationAI Governance Policy ManagementSecurityClient & Examiner AI Requirements Performance MeasurementTraining

Financial Artificial Intelligence Capabilities

AI Strategy & ReadinessAssessments through roadmap+
Assessments, strategy, use-case identification, roadmaps and business-case development.
Financial AI Workflow TransformationStrategy into working systems+
Workflow design, automation, integration, implementation and performance measurement.
Private & Secure AIControlled environments+
Controlled AI environments, private deployment, organizational knowledge, secure integration.
AI Governance & Shadow AIPolicy and technical controls together+
Policies, AI inventories, application controls, vendor assessment, monitoring and training.
AI Technology & Architecture AdvisoryTechnology-independent selection+
LLM, private AI, propositional AI, hybrid and specialized technology evaluation.
Governed & Verifiable AIBeyond plausible output+
Grounding, provenance, permissions, constraints, verification and auditability.
Agentic AI GovernanceWhen AI can act+
Identity, permissions, tool access, action controls, approvals, escalation and evidence.
AI Security & Data ProtectionThe cybersecurity of financial AI+
Cybersecurity, sensitive-information exposure, access controls and AI third-party risk.
Model Risk & Regulatory AlignmentDistinguishing rule from guidance+
Model risk management alignment, regulatory-context review, and documentation appropriate to institution type.
Financial AI LeadershipOngoing strategy and reassessment+
Ongoing strategy, technology monitoring, governance and reassessment.

Why Gregg Global

01

Financial + Technology + Risk

Financial AI sits at the intersection of institutional trust, information, technology and regulatory risk.

02

Technology Independent

We begin with the challenge rather than a predetermined platform.

03

Regulatory Precision

We distinguish binding requirements from guidance, proposals and withdrawn rules, verified against current primary authority.

04

Security Integrated

Security and information protection incorporated from the beginning.

05

Emerging Technology

We evaluate LLMs, private AI, proposition-based architectures, agents and other emerging approaches.

06

Implementation Focused

Strategy progresses into workflow integration, implementation, governance, training and support.

Sophisticated Capabilities. Designed for the Financial Environment.

Begin With the Financial Challenge.

You do not need to know which AI platform to buy. You do not need to determine whether the answer is an LLM, private AI, proposition-based AI, an agent, or a combination. And you do not need a completed AI strategy before talking with us. We can start there.

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