This program equips cybersecurity professionals, AI engineers, and security architects with the expertise to identify, analyze, and mitigate vulnerabilities in Generative AI (GenAI) and Large Language Models (LLMs). You’ll begin by exploring the foundations of GenAI threats, examining common attack vectors such as prompt injection, jailbreaks, model theft, and adversarial manipulation. Through practical demonstrations, you will learn how attackers exploit weaknesses in AI-driven systems and how defenders can detect and respond to these risks in real-world environments.



Generative AI and LLM Security
This course is part of AI Security Specialization

Instructor: Edureka
Access provided by BITS Pilani
Recommended experience
What you'll learn
Identify key vulnerabilities and attack vectors in Generative and Agentic AI systems.
Apply strategies to secure AI training data, pipelines, and supply chains from risks.
Analyze LLM-specific threats and implement guardrails, safety, and ethical practices.
Evaluate ethical and regulatory compliance requirements for AI systems.
Skills you'll gain
- Cloud Security
- Artificial Intelligence and Machine Learning (AI/ML)
- Network Security
- Cyber Security Policies
- Cyber Attacks
- Google Gemini
- Risk Management
- Governance Risk Management and Compliance
- Responsible AI
- LLM Application
- Artificial Intelligence
- Supply Chain
- Natural Language Processing
- Generative AI
- Threat Modeling
- Cyber Security Strategy
- Security Management
- Security Strategy
- Data Ethics
- Computer Security Awareness Training
Details to know

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October 2025
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There are 5 modules in this course
Uncover the vulnerabilities of Generative AI systems by examining common attack vectors such as prompt injection, jailbreaks, and model theft. Learn how adversaries exploit weaknesses, explore mitigation strategies, and gain hands-on practice in detecting and responding to real-world GenAI risks.
What's included
13 videos8 readings3 assignments3 discussion prompts1 plugin
Learn how to secure the AI lifecycle by protecting training data, ensuring supply chain integrity, and safeguarding model deployment pipelines. Explore techniques to detect data poisoning, enforce model provenance, manage dependencies, and implement tamper-proofing strategies. Gain practical skills to apply security best practices, monitor AI systems, and mitigate risks while ensuring ethical, reliable, and compliant AI operations.
What's included
11 videos7 readings4 assignments3 discussion prompts
Explore how AI systems can operate ethically and comply with regulatory standards while maintaining security. Learn to identify ethical risks, address bias and fairness challenges, and implement transparency and accountability in AI workflows. Gain hands-on experience with compliance frameworks, auditing practices, and tools like Sola Security to ensure AI-driven systems are responsible, transparent, and legally compliant.
What's included
8 videos5 readings3 assignments2 discussion prompts
Investigate advanced security risks in AI systems, focusing on multimodal and Agentic AI vulnerabilities. Learn to identify and mitigate adversarial threats across diverse data modalities, while understanding defensive strategies and risk management practices. Gain hands-on experience with AI-driven threat detection, cybersecurity triage, and security assessment techniques to ensure robust, resilient, and secure enterprise AI deployments.
What's included
6 videos4 readings3 assignments2 discussion prompts
This module is designed to assess an individual on the various concepts and teachings covered in this course. Evaluate your knowledge with a comprehensive graded quiz.
What's included
1 video1 reading2 assignments1 discussion prompt1 plugin
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