Total Seminars

AI Risk Management for Security Managers

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Total Seminars

AI Risk Management for Security Managers

Michael Solomon

Instructor: Michael Solomon

Gain insight into a topic and learn the fundamentals.
Intermediate level

Recommended experience

1 week to complete
at 10 hours a week
Flexible schedule
Learn at your own pace
Gain insight into a topic and learn the fundamentals.
Intermediate level

Recommended experience

1 week to complete
at 10 hours a week
Flexible schedule
Learn at your own pace

What you'll learn

  • How to establish and manage AI governance programs, including steering committees, risk appetite, and regulatory framework selection.

  • How to build an AI security program and manage assets and data lifecycles, including policy development, asset inventories, and data classification

  • How to assess and respond to AI-specific risk through incident classification, business continuity planning, penetration testing, and red-teaming

  • How to manage AI vendor and supply-chain risk, address AI ethics and IP accountability, and apply continuous security monitoring in production

Details to know

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Recently updated!

August 2026

Assessments

11 assignments

Taught in English

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There are 11 modules in this course

Learners are introduced to the AI governance, the ISACA AAISM certification and the career value of the credential. It builds the foundation of AI governance: governance models (centralized, federated, hybrid), board-level accountability, steering committees and charters, stakeholder identification, risk appetite and tolerance, and framework selection across the EU AI Act, ISO 42001, OECD, and NIST AI RMF. By the end of this module, learners can describe how an AI governance program is structured and staffed.

What's included

6 videos2 readings1 assignment

Learners complete the governance-framework arc, examining how organizations select and apply the EU AI Act, ISO 42001, OECD principles, and the NIST AI RMF, how AI business use cases are governed through intake and privacy review workflows, and the strategic differences between consumer and enterprise AI adoption, including shadow AI and data residency risk. By the end of this module, learners can evaluate and recommend a governance framework for a given organizational context.

What's included

4 videos1 assignment

Learners work through the policy and procedural backbone of an AI program: buy-vs-build decision governance, AI policy and responsible-use development, procedures and manuals, AI asset inventories, model cards and documentation standards, data classification and discovery, data augmentation controls, and secure data storage. By the end of this module, learners can build the documentation and data-security controls an AI program depends on.

What's included

8 videos1 reading1 assignment

Learners build the AI security program itself: data destruction and retention, developing an AI security program plan, aligning AI security with enterprise InfoSec, structuring an AI security team, AI-enabled security tools, security metrics/KPIs/KRIs, executive management reporting, and AI incident detection and notification. By the end of this module, learners can stand up and report on an AI security program end to end.

What's included

8 videos1 reading1 assignment

Learners learn to classify AI incidents by severity, design AI-specific business continuity plans, establish red-button and break-glass emergency controls, and apply RTO/RPO thinking to AI disaster recovery. By the end of this module, learners can build a resiliency plan that accounts for AI-specific failure modes.

What's included

4 videos1 reading1 assignment

Learners move into hands-on risk practice: AI risk assessment and impact analysis, risk documentation and treatment decisions, penetration testing methodology, and red-teaming and adversarial-threat techniques used against real AI systems. By the end of this module, learners can plan and interpret an adversarial test against an AI system.

What's included

4 videos1 assignment

Learners study AI-specific attack chains through a threat-intelligence lens and learn to recognize deepfakes, insider threats, and the emerging risks posed by autonomous AI agents. By the end of this module, learners can map an AI attack chain and identify the threat actor techniques behind it.

What's included

2 videos1 reading1 assignment

Learners cover vendor due diligence and contracts, provider-versus-deployer accountability, third-, fourth-, and fifth-party supply-chain risk, IP ownership and liability, and ongoing vendor monitoring. By the end of this module, learners can run a full AI vendor risk review from intake through ongoing monitoring.

What's included

5 videos1 assignment

Learners work through AI security architecture and change management, model testing, regression, and TEVV, and the data management practices that guard against data poisoning. By the end of this module, learners can evaluate an AI system's architecture and testing regime for security gaps.

What's included

3 videos1 reading1 assignment

Learners close out the course by applying privacy, ethical, and trust controls, learning control selection and lifecycle management, and building the continuous security-monitoring practices that keep AI systems secure after deployment. By the end of this module, learners can design a monitoring program that keeps a production AI system accountable over time.

What's included

3 videos1 assignment

What's included

1 assignment

Instructor

Michael Solomon
Total Seminars
8 Courses661 learners

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Total Seminars

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