Johns Hopkins University
AI for Cybersecurity Specialization
Johns Hopkins University

AI for Cybersecurity Specialization

Master AI Techniques for Cybersecurity Challenges. Develop expertise in advanced AI techniques to detect and prevent cybersecurity threats, ensuring robust protection against evolving digital risks.

Lanier Watkins

Instructor: Lanier Watkins

Included with Coursera Plus

Get in-depth knowledge of a subject

(64 reviews)

Intermediate level

Recommended experience

3 months at 5 hours a week
Flexible schedule
Earn a career credential
Share your expertise with employers
Get in-depth knowledge of a subject

(64 reviews)

Intermediate level

Recommended experience

3 months at 5 hours a week
Flexible schedule
Earn a career credential
Share your expertise with employers

What you'll learn

  • Implement AI-driven techniques for detecting and mitigating advanced malware and network anomalies effectively.

  • Utilize Generative Adversarial Networks (GANs) to understand and counteract adversarial attacks in AI systems.

  • Evaluate AI model performance and apply reinforcement learning to enhance adaptive cybersecurity measures.

Overview

What’s included

Shareable certificate

Add to your LinkedIn profile

Taught in English
33 practice exercises

Advance your subject-matter expertise

  • Learn in-demand skills from university and industry experts
  • Master a subject or tool with hands-on projects
  • Develop a deep understanding of key concepts
  • Earn a career certificate from Johns Hopkins University

Specialization - 3 course series

What you'll learn

  • Use AI techniques to detect and mitigate various cyber threats, protecting digital assets and data.

  • Develop and apply machine learning models to identify, classify, and filter spam and phishing emails.

  • Implement AI-driven biometric solutions like keystroke dynamics and facial recognition to enhance user authentication security.

Skills you'll gain

Anomaly Detection, Machine Learning, Machine Learning Algorithms, Artificial Intelligence, Threat Detection, Computer Vision, Cyber Threat Intelligence, Cybersecurity, Email Security, Artificial Neural Networks, Jupyter, and Multi-Factor Authentication

What you'll learn

  • Understand various types of malware and apply foundational analysis techniques to effectively detect and classify them.

  • Implement advanced machine learning algorithms, including clustering and decision trees, for efficient malware detection.

  • Explore anomaly detection techniques using botnet data and learn how to analyze network traffic for unusual patterns.

  • Collaborate and present research findings on current trends in network anomaly detection, enhancing communication and analytical skills.

Skills you'll gain

Anomaly Detection, Machine Learning Methods, Malware Protection, Intrusion Detection and Prevention, Machine Learning, Network Analysis, Cybersecurity, Performance Testing, Supervised Learning, Machine Learning Software, System Design and Implementation, Network Security, Microsoft Windows, Threat Detection, Machine Learning Algorithms, and Continuous Monitoring

What you'll learn

  • Learn to implement AI-based solutions to detect and prevent credit card fraud in cloud environments.

  • Explore the fundamentals of Generative Adversarial Networks and their applications in generating synthetic data.

  • Gain hands-on experience with black-box and white-box adversarial attacks to assess and enhance model resilience.

  • Master techniques in feature engineering and performance evaluation to optimize AI models for cybersecurity applications.

Skills you'll gain

Reinforcement Learning, Feature Engineering, Fraud detection, Cybersecurity, Artificial Intelligence, Anomaly Detection, Machine Learning Methods, Cyber Security Strategy, Machine Learning, Generative AI, Security Testing, Threat Modeling, and Deep Learning

Earn a career certificate

Add this credential to your LinkedIn profile, resume, or CV. Share it on social media and in your performance review.

Instructor

Lanier Watkins
Johns Hopkins University
3 Courses6,447 learners

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