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Duration 14 hours
Course Outline
Introduction to Privacy in AI Deployments
- Privacy challenges within AI systems
- The role of Ollama in privacy-conscious environments
- Key compliance considerations (GDPR, HIPAA, etc.)
Secure Containerisation and Deployment
- Hardening Docker and Kubernetes environments
- Network security and isolation techniques
- Secrets management and key rotation
On-Device and On-Prem Inference
- Privacy advantages of local inference
- Edge deployment patterns
- Balancing performance against compliance requirements
Differential Privacy and Data Protection
- Core principles of differential privacy
- Applying noise mechanisms to AI workflows
- Strategies for data minimisation and anonymisation
Logging, Monitoring, and Auditing
- Best practices for secure logging
- Maintaining audit trails for compliance
- Real-time monitoring and alerting systems
Access Control and Policy Enforcement
- Role-based access control (RBAC)
- Policy enforcement using Open Policy Agent
- Data governance frameworks
Case Studies and Best Practices
- Deploying Ollama within regulated industries
- Striking a balance between usability and privacy
- Insights from real-world implementations
Summary and Next Steps
Requirements
- A solid grasp of IT security principles
- Hands-on experience with containerisation and deployment processes
- Familiarity with compliance frameworks such as GDPR or HIPAA
Target Audience
- Security engineers
- IT architects
- Privacy officers
- Compliance teams