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מתחיל 5 June 2026 20:01

נגמר 5 June 2026

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Security, Scorpions, AI, Wilds and Coding: The Unexpected - Privacy-Aware Machine Learning and Data Science

Explore the evolving intersection of privacy-aware machine learning, data science, and security through innovative hacking approaches and emerging AI resilience strategies.
Ekoparty Security Conference via YouTube

Ekoparty Security Conference

6076 קורסים


40 minutes

שדרוג אופציונלי זמין

Not Specified

התקדמות בקצב שלך

Free Video

שדרוג אופציונלי זמין

סקירה כללית

Explore the evolving intersection of privacy-aware machine learning, data science, and security through innovative hacking approaches and emerging AI resilience strategies.

סילבוס

  • Introduction to Privacy-Aware Machine Learning
  • Overview of Privacy and Security in AI
    Key Concepts: Confidentiality, Integrity, and Availability
  • Data Science Fundamentals
  • Data Collection and Pre-processing with Privacy Considerations
    Statistical Analysis and Its Role in Ensuring Data Privacy
  • Privacy-Aware Machine Learning Techniques
  • Differential Privacy
    Federated Learning
    Homomorphic Encryption
  • Security in Machine Learning
  • Vulnerabilities and Threat Models
    Adversarial Machine Learning
  • Innovative Hacking Approaches in AI
  • Ethical Hacking in Data Science
    Case Studies of AI Systems Under Attack
  • Building Resilient AI Systems
  • Robustness and Generalization
    Defensive Distillation
  • Scorpions and the Wilds: Real-World Applications
  • Case Studies: Privacy-Aware ML in Healthcare
    Case Studies: Security in Financial Services
  • Coding Privacy-Aware ML Models
  • Practical Implementation of Privacy Techniques
    Hands-On Exercises: Developing Secure ML Models
  • Emerging Trends and Future Directions
  • AI Governance and Policy Frameworks
    Evolving Privacy Regulations and Their Impact on AI
  • Conclusion and Ethical Considerations
  • Balancing Innovation with Ethical Responsibility
    The Role of AI Engineers in Shaping Privacy Standards

נושאים

Data Science