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    Course Outline
Understanding AI TRiSM
- Introduction to AI TRiSM
 - The importance of trust and security in AI
 - Overview of AI risks and challenges
 
Foundations of Trustworthy AI
- Principles of AI trustworthiness
 - Ensuring fairness, reliability, and robustness in AI systems
 - AI ethics and governance
 
Risk Management in AI
- Identifying and assessing AI risks
 - Mitigation strategies for AI-related risks
 - AI risk management frameworks
 
Security Aspects of AI
- AI and cybersecurity
 - Protecting AI systems from attacks
 - Secure AI development lifecycle
 
Compliance and Data Protection
- Regulatory landscape for AI
 - AI compliance with data privacy laws
 - Data encryption and secure storage in AI systems
 
AI Model Governance
- Governance structures for AI
 - Monitoring and auditing AI models
 - Transparency and explainability in AI
 
Implementing AI TRiSM
- Best practices for implementing AI TRiSM
 - Case studies and real-world examples
 - Tools and technologies for AI TRiSM
 
Future of AI TRiSM
- Emerging trends in AI TRiSM
 - Preparing for the future of AI in business
 - Continuous learning and adaptation in AI TRiSM
 
Summary and Next Steps
Requirements
- An understanding of basic AI concepts and applications
 - Experience with data management and IT security principles is beneficial
 
Audience
- IT professionals and managers
 - Data scientists and AI developers
 - Business leaders and policymakers
 
             21 Hours