AI Adoption - Drive Business Value and Organizational Impact
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Overview
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Explore the critical security challenges that emerge when AI agents use Model Control Protocol (MCP) to connect with multiple tools and services across different protocols. Discover how MCP's flexibility in allowing agents to interact with Slack, GitHub, databases, and other systems creates significant security vulnerabilities including authentication gaps, inadequate permission models, and compromised audit trails. Learn about real-world attack scenarios such as prompt injection leading to unauthorized API calls, credential leakage across protocol boundaries, and privilege escalation through tool chaining. Examine practical solutions including identity verification at protocol boundaries, granular context-aware permissions, and audit systems designed for non-human actors. Gain actionable insights on implementing MCP securely without creating attack surfaces, and understand what security features to build or demand from vendors to maintain secure agent-to-tool communication in production environments.
Syllabus
MCP Security: What Happens When Your Agents Talk to Everything?
Taught by
MLOps.community