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Program Highlights

The Advanced in AI Risk (AAIR) certification training from InfosecTrain is an AI-focused risk management program designed to help IT risk, governance, and security professionals address the unique challenges associated with the rapid adoption of artificial intelligence. Developed by ISACA, AAIR enhances the expertise of certified risk practitioners by equipping them with the strategic knowledge and practical skills needed to identify, assess, and manage AI-related risks across the enterprise.
 
Learn how to establish governance structures, policies, and controls that support responsible AI adoption while integrating AI risk management into existing enterprise governance, risk, and compliance frameworks. Develop the ability to identify, assess, monitor, and mitigate risks throughout the AI lifecycle—from data collection and model development to deployment, monitoring, maintenance, and retirement. Gain expertise in designing, implementing, and managing enterprise-wide AI risk programs, enabling organizations to maintain oversight, accountability, transparency, and trust in AI-driven initiatives.

  • 16-Hour Live Instructor-led Training16-Hour Live Instructor-led Training
  • ISACA Premium Training PartnerISACA Premium Training Partner
  • Highly Interactive and Dynamic SessionsHighly Interactive and Dynamic Sessions
  • Learn from Certified ExpertsLearn from Certified Experts
  • Post Training SupportPost Training Support
  • Training Completion CertificateTraining Completion Certificate
  • Career Guidance & MentorshipCareer Guidance & Mentorship
  • Telegram Group for Exam SupportTelegram Group for Exam Support
  • Access to Recorded SessionsAccess to Recorded Sessions

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About Course

The Advanced in AI Risk (AAIR) credential validates a professional’s ability to identify, assess, and manage risks associated with the development, deployment, and operation of AI systems. The course equips professionals with the knowledge and skills required to oversee the entire AI risk lifecycle, ensuring that AI initiatives align with organizational objectives, regulatory requirements, and ethical standards. AAIR focuses on three core practice areas: AI Risk Governance and Framework Integration, AI Lifecycle Risk Management and AI Risk Program Management.

Course Curriculum

  • Domain 1: AI Risk Governance and Framework Integration 37%
    • AI Models, Frameworks, Strategies, and Use Cases
    • AI Organizational Processes and Alignment
    • AI Ownership, Oversight, and Accountability
    • AI Policies, Procedures, and Organizational Training
    • AI Regulatory Compliance and Legal Considerations
    • AI Trustworthiness, Ethical and Societal Implications (e.g., ESG)
  • Domain 2: AI Life Cycle Risk Management 21%
    • AI Design, Development/Procurement, and Documentation
    • AI Model Training, Testing, and Validation
    • AI Implementation, Maintenance, and Decommissioning
    • AI Data and Asset Management
  • Domain 3: AI Risk Program Management 42%
    • AI Risk Scenario Identification and Assessment (e.g., threats, vulnerabilities, and attacks)
    • AI Risk Treatment Strategies
    • Controls Management (e.g., Evaluation, Selection, Validation)
    • Risk Metrics, Monitoring, and Reporting
    • Supply Chain Risk Management (e.g., third party resources)
    • Incident Response, BIA, Business Continuity, and Disaster Recovery
  • Other Skills Tested
    • Evaluate risk related to AI models/solutions including design, suitability, algorithms, training, drift, and AI life cycle.
    • Facilitate the integration of AI risk management into an enterprise risk management framework and risk programs.
    • Develop and implement an AI risk management framework, including roles and accountability, AI risk policies and procedures, and acceptable risk tolerance levels.
    • Conduct risk assessments to identify and classify risks associated with AI.
    • Develop and recommend risk treatment strategies for identified AI risks.
    • Assess compliance with applicable AI-related regulations, laws, frameworks, standards, and guidelines.
    • Integrate AI risk considerations into existing governance programs.
    • Evaluate AI use cases based on the organization’s risk appetite
    • Monitor and test organizational processes to identify AI risks.
    • Collaborate with stakeholders to develop and integrate AI risk concepts into enterprise-wide awareness training.
    • Capture AI risk considerations in enterprise risk metrics and reporting (e.g., board, management, operations).
    • Conduct and/or evaluate threat and vulnerability assessments on AI projects/programs.
    • Collaborate with stakeholders to integrate AI risk scenarios into the enterprise incident management program.
    • Continuously assess and monitor the risk landscape for emerging AI risk.
    • Evaluate controls to manage AI-related risk within the organization’s risk tolerance.
    • Advise on AI-related risk within contracts and service agreements, including data usage and intellectual property.
    • Evaluate AI risk as part of supply chain risk management.
    • Collaborate with stakeholders to address AI trustworthiness and impacts including ethics, bias, privacy, safety, and environmental, social, and governance (ESG) implications.
    • Leverage AI to support the risk management program (e.g., risk profile, reporting, evaluation, risk models, and analysis).
    • Integrate AI-related risk considerations into the change management process.
    • Incorporate AI-related risk considerations into incident response, BIAs, the BCP, and DRP.
    • Assess human oversight controls at critical decision points for risk and AI impact.

Target Audience

The training is ideal for:

  • Risk Management Professionals
  • IT Auditors and Internal Auditors
  • Information Security and Cybersecurity Professionals
  • Governance, Risk, and Compliance (GRC) Practitioners
  • AI Governance and Responsible AI Leaders
  • Technology and Digital Transformation Managers
  • Data Governance and Privacy Professionals
  • Enterprise Risk Managers
  • CRISC, CISA, CISM, CISSP, and CGEIT Certified Professionals
  • Executives and Decision-Makers overseeing AI adoption

Pre-requisites

  • Active holders of industry-recognized certifications such as CISA, CISM, CRISC, CGEIT, CDPSE, and other relevant credentials seeking to expand their expertise in AI risk management.
  • Experienced professionals working in IT risk, governance, compliance, audit, cybersecurity, consulting, or advisory roles who are responsible for assessing, managing, and mitigating technology-related risks.

Exam Details

Certification Name AAIR
Exam Duration 150 minutes
Number of Questions 90
Exam Format Multiple Choice Questions
Passing Score 450
Exam Language English, Spanish and Chinese

Course Objectives

  • Understand the principles of AI risk management and the role of governance in ensuring responsible and secure AI adoption across the enterprise.
  • Integrate AI risk management practices into existing enterprise governance, risk, compliance, and cybersecurity frameworks.
  • Develop and implement AI governance structures, policies, controls, and oversight mechanisms aligned with organizational objectives and regulatory requirements.
  • Apply AI lifecycle risk management techniques to identify and mitigate risks throughout the design, development, deployment, monitoring, and retirement phases of AI systems.
  • Assess ethical, legal, regulatory, privacy, security, and operational risks associated with AI technologies and machine learning models.
  • Design and manage enterprise-wide AI risk programs that support transparency, accountability, trustworthiness, and responsible AI practices.
  • Establish effective AI risk monitoring, reporting, and continuous improvement processes to maintain compliance and organizational resilience.
  • Evaluate emerging AI threats, regulatory developments, and industry best practices to strengthen AI governance and risk management strategies.
  • Prepare for the ISACA AAIR certification exam by gaining a comprehensive understanding of the three core domains: AI Risk Governance and Framework Integration, AI Lifecycle Risk Management, and AI Risk Program Management.
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Frequently Asked Questions

What is Advanced in AI Risk (AAIR) certification?

AAIR is an ISACA certification that validates expertise in identifying, assessing, managing, and governing risks associated with AI systems and technologies.

Who should enroll in AAIR certification training?

The training is ideal for risk managers, IT auditors, security professionals, compliance officers, AI governance professionals, and technology leaders.

What domains are covered in the AAIR exam?

The exam covers three core domains: AI Risk Governance and Framework Integration, AI Lifecycle Risk Management, and AI Risk Program Management.

Does AAIR cover AI risk governance and framework integration?

Yes, AAIR includes AI governance principles and the integration of AI risk management into enterprise governance and risk frameworks.

What is AI lifecycle risk management in AAIR?

It focuses on identifying and managing risks throughout the AI lifecycle, from design and development to deployment, monitoring, and retirement.

Does AAIR include AI risk program management concepts?

Yes, the certification covers establishing, implementing, and maintaining enterprise-wide AI risk management programs.

Is AAIR suitable for CRISC, CISA, CISM, and CISSP professionals?

Yes, AAIR is highly relevant for CRISC, CISA, CISM, CISSP, and other professionals responsible for governance, risk, security, and compliance.

How does AAIR support enterprise AI governance programs?

AAIR helps professionals develop frameworks, policies, controls, and oversight mechanisms to ensure responsible and secure AI adoption.

What skills will I gain from the AAIR certification training?

You will gain skills in AI risk assessment, governance, compliance, lifecycle risk management, control implementation, and enterprise AI risk oversight.

How is AAIR different from AAIA and AAISM certifications?

AAIR focuses on AI risk management and governance, AAIA emphasizes AI auditing and assurance, while AAISM concentrates on AI security management and protection strategies.

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