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Complete Guide to LLM Security Testing

What you will learn

Definition and significance of LLMs in modern AI

Overview of LLM architecture and components

Identifying security risks associated with LLMs

Importance of data security, model security, and infrastructure security

Comprehensive analysis of the OWASP Top 10 vulnerabilities for LLMs

Techniques for prompt injection attacks and their implications

Identifying and exploiting API vulnerabilities in LLMs

Understanding excessive agency exploitation in LLM systems

Recognizing and addressing insecure output handling in AI models

Practical demonstrations of LLM hacking methods

Interactive exercises including a Random LLM Hacking Game for applied learning

Real-world case studies on LLM security breaches and remediation

Input sanitization techniques to prevent attacks

Implementation of model guardrails and filtering methods

Adversarial training practices to enhance LLM resilience

Future security challenges and evolving defense mechanisms for LLMs

Best practices for maintaining LLM security in production environments

Strategies for continuous monitoring and assessment of AI model vulnerabilities

Why take this course?

LLM Pentesting: Mastering Security Testing for AI Models

Course Description:

Dive into the rapidly evolving field of Large Language Model (LLM) security with this comprehensive course designed for both beginners and seasoned security professionals. LLM Pentesting: Mastering Security Testing for AI Models will equip you with the skills to identify, exploit, and defend against vulnerabilities specific to AI-driven systems.

What You’ll Learn:


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  • Foundations of LLMs: Understand what LLMs are, their unique architecture, and how they process data to make intelligent predictions.
  • LLM Security Challenges: Explore the core aspects of data, model, and infrastructure security, alongside ethical considerations critical to safe LLM deployment.
  • Hands-On LLM Hacking Techniques: Delve into practical demonstrations based on the LLM OWASP Top 10, covering prompt injection attacks, API vulnerabilities, excessive agency exploitation, and output handling.
  • Defensive Strategies: Learn defensive techniques, including input sanitization, implementing model guardrails, filtering, and adversarial training to future-proof AI models.

Course Structure:

This course is designed for self-paced learning with 2+ hours of high-quality video content (and more to come). It’s divided into 4 key sections:

  • Section 1: Introduction – Course overview and key objectives.
  • Section 2: All About LLMs – Fundamentals of LLMs, data and model security, and ethical considerations.
  • Section 3: LLM Hacking – Hands-on hacking tactics and a unique LLM hacking game for applied learning.
  • Section 4: Defensive Strategies for LLMs – Proven defense techniques to mitigate vulnerabilities and secure AI systems.

Whether you’re looking to build new skills or advance your career in AI security, this course will guide you through mastering the security testing techniques required for modern AI applications.

Enroll today to gain the insights, skills, and confidence needed to become an expert in LLM security testing!

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