Course Code: spedgeai
Duration: 14 hours
Prerequisites:
  • An understanding of AI and machine learning concepts
  • Basic knowledge of cybersecurity principles
  • Experience with programming languages (Python recommended)

Audience

  • Cybersecurity professionals
  • System administrators
  • AI ethics researchers
Overview:

Security and Privacy in Edge AI focuses on addressing security and privacy concerns related to the deployment of AI models on edge devices. This course covers best practices for securing edge devices, mitigating potential risks, and addressing ethical considerations in the use of Edge AI. Participants will gain practical knowledge and skills necessary to enhance the security and privacy of Edge AI applications.

This instructor-led, live training (online or onsite) is aimed at intermediate-level cybersecurity professionals, system administrators, and AI ethics researchers who wish to secure and ethically deploy Edge AI solutions.

By the end of this training, participants will be able to:

  • Understand the security and privacy challenges in Edge AI.
  • Implement best practices for securing edge devices and data.
  • Develop strategies to mitigate security risks in Edge AI deployments.
  • Address ethical considerations and ensure compliance with regulations.
  • Conduct security assessments and audits for Edge AI applications.

Format of the Course

  • Interactive lecture and discussion.
  • Lots of exercises and practice.
  • Hands-on implementation in a live-lab environment.

Course Customization Options

  • To request a customized training for this course, please contact us to arrange.
Course Outline:

Introduction to Security and Privacy in Edge AI

  • Overview of Edge AI and its unique security and privacy challenges
  • Key differences between edge and cloud security
  • Current trends and emerging threats in Edge AI security
  • Real-world case studies and incidents

Securing Edge Devices

  • Best practices for securing edge hardware
  • Implementing secure boot and hardware root of trust
  • Protecting data at rest and in transit on edge devices
  • Case studies of secure edge device deployments

Data Privacy in Edge AI

  • Ensuring data privacy in Edge AI applications
  • Techniques for data anonymization and encryption
  • Privacy-preserving machine learning techniques
  • Case studies of privacy-focused Edge AI applications

Threat Detection and Mitigation

  • Identifying potential threats and vulnerabilities in Edge AI
  • Implementing intrusion detection and prevention systems
  • Real-time threat monitoring and response
  • Practical exercises in threat detection and mitigation

Authentication and Access Control

  • Implementing robust authentication mechanisms for edge devices
  • Managing access control and user permissions
  • Securing APIs and communication channels
  • Practical examples and case studies

Ethical Considerations in Edge AI

  • Understanding ethical challenges in Edge AI deployments
  • Addressing bias and fairness in AI models
  • Ensuring transparency and accountability
  • Compliance with ethical guidelines and regulations

Regulatory Compliance

  • Overview of relevant regulations and standards (GDPR, HIPAA, etc.)
  • Ensuring compliance in Edge AI deployments
  • Conducting security and privacy audits
  • Case studies of regulatory compliance in Edge AI

Performance and Security Trade-offs

  • Balancing performance and security in Edge AI applications
  • Techniques for optimizing security without compromising performance
  • Tools and frameworks for secure Edge AI development
  • Practical examples and case studies

Incident Response and Recovery

  • Developing incident response plans for Edge AI applications
  • Conducting security breach investigations
  • Implementing recovery strategies and business continuity plans
  • Practical exercises in incident response

Security Assessments and Audits

  • Conducting comprehensive security assessments for Edge AI
  • Tools and methodologies for security auditing
  • Identifying and addressing security gaps
  • Practical examples and case studies

Innovative Use Cases and Applications

  • Advanced security applications in Edge AI
  • In-depth case studies of secure Edge AI deployments
  • Success stories and lessons learned
  • Future trends and opportunities in Edge AI security

Hands-On Projects and Exercises

  • Conducting a security assessment for an Edge AI application
  • Real-world projects and scenarios
  • Collaborative group exercises
  • Project presentations and feedback

Summary and Next Steps

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