Macquarie University

Cyber Security: Security of AI

Macquarie University

Cyber Security: Security of AI

Matt Bushby

Instructor: Matt Bushby

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Gain insight into a topic and learn the fundamentals.

17 reviews

Beginner level

Recommended experience

1 week to complete
at 10 hours a week
Flexible schedule
Learn at your own pace
Gain insight into a topic and learn the fundamentals.

17 reviews

Beginner level

Recommended experience

1 week to complete
at 10 hours a week
Flexible schedule
Learn at your own pace

What you'll learn

  • Identify emerging threats targeting AI systems and applications.

  • Apply defences to protect AI from adversarial attacks and model leakage.

  • Evaluate AI security controls, testing methods, and trade-offs.

  • Understand regulation, responsible AI principles, and future risks.

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Assessments

12 assignments

Taught in English

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There are 6 modules in this course

Artificial Intelligence (AI) introduces rapidly evolving cybersecurity threats. This module explores AI fundamentals, how it works, and its applications. You will learn the difference between engineering-driven AI systems and deep learning models, and their unique security considerations. We then focus on the emerging threat landscape: adversarial AI, model manipulation, deepfakes, AI-driven scams, and AI weaponization for misinformation. Build a foundation in traditional security frameworks and AI-specific risks, preparing you to secure AI applications. Understand the urgency of building trusted, defensible AI systems.

What's included

2 assignments8 plugins

AI integration into critical infrastructure and industrial systems creates new attack avenues. This module explores how Artificial Intelligence reshapes security in Industrial Control Systems (ICS) and Operational Technology (OT). You will examine AI applications in ICS/OT, enhancing efficiency, but also introducing novel vulnerabilities and attack vectors in critical infrastructure. Through case studies, investigate how adversaries exploit AI in industrial environments. Learn to adapt traditional OpSec and DevSecOps practices for AI-enabled deployments. Identify sensitive components within AI pipelines and apply context-specific defences. Learn to defend AI-powered industry.

What's included

2 assignments6 plugins

As AI systems deploy, exposure to adversarial threats and misuse increases. This module explores how AI is attacked and exploited, a critical focus for cyber professionals. You will dive into AI-specific attack vectors: model poisoning, information leakage, model stealing, and backdoor exploits. These threats compromise AI performance and pose risks to data privacy, intellectual property, and user safety. Examine harmful AI outputs from biased data or manipulation. Learn how output alignment, ethical censorship, and AI-powered surveillance affect public trust and legal compliance. Analyze case studies to identify AI vulnerabilities and understand societal consequences of insecure deployments. Ensure AI shapes the world securely and responsibly.

What's included

2 assignments6 plugins

Defending AI systems against emerging threats is critical. This module explores technical controls and testing strategies to secure AI models. You will learn to apply AI-specific defences, from secure algorithm design to privacy-preserving techniques like differential privacy. Examine how to test and validate AI model robustness using red, purple, and blue teaming approaches. Focus on balancing security, utility, and performance to make informed trade-offs. Gain practical skills to implement trusted controls and rigorously test for resilience against real-world threats, whether building or auditing AI systems.

What's included

2 assignments8 plugins

As AI systems grow, responsible design, deployment, and governance are imperative. This module introduces Responsible AI principles: fairness, bias mitigation, transparency, and ethical accountability. You will explore how AI decisions impact individuals and communities, navigating trade-offs between user privacy, model performance, and transparency. Unpack challenges like data sourcing, labelling, and ethical implications of large-scale models. Learn practical strategies for enhancing trust in AI systems. Dive into global frameworks, policies, and governance models supporting secure, ethical AI adoption. Ensure AI systems are functional, fair, transparent, and aligned with regulatory expectations.

What's included

2 assignments6 plugins

AI is evolving rapidly, increasing security challenges. This module examines how emerging applications and architectures will shape the future of AI security. You will explore plausible AI uses in healthcare, autonomous vehicles, and programming, unpacking unique risks. We introduce Artificial General Intelligence (AGI), its transformative potential, and profound security and ethical implications. From lightweight AI models to philosophical security trade-offs, this module encourages critical, proactive thinking. Gain insight and foresight to anticipate future risks, influence responsible innovation, and contribute to the safe evolution of intelligent systems.

What's included

1 reading2 assignments7 plugins

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Instructor

Matt Bushby
Macquarie University
15 Courses 17,354 learners

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Reviewed on Jul 22, 2025