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DSTC-01513 Online (e-LMS) Graduate / Intermediate

AI for Cybersecurity: Threat Detection and Risk Mitigation

by - DSTC

Detect threats and mitigate cyber risk with AI.

โ˜…โ˜…โ˜…โ˜…โ˜… Be the first to review โ€ข 3 Days ยท 4.5 hrs โ€ข e-Certificate Included
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From โ‚น2,500 + GST

Programme Parameters

Educational Level:
Graduate / Intermediate
Duration & Workload:
3 Days (4.5 Hrs)
Delivery Mode:
Online (e-LMS)
Prerequisites:
โ€ข A basic understanding of the subject area and fundamental programming or scientific concepts.
โ€ข A laptop or desktop with a stable internet connection.
โ€ข Willingness to complete assignments and the capstone project.

About This Course

AI for Cybersecurity: Threat Detection and Risk Mitigation shows how machine learning strengthens defence across the security stack. You learn to build models that detect intrusions, malware and anomalous behaviour across networks, endpoints and identities, and to move from detection to risk: prioritising what matters, and informing mitigation. The course also covers the adversarial reality โ€” attackers evading and targeting ML โ€” and the balance of automation and human judgement. You finish able to apply AI to detect threats and reduce cyber risk. A verified e-Certificate of competency and e-Marksheet from the Deep Science & Technology Consortium.

๐ŸŽฏ Program Aim

This course applies AI to cybersecurity โ€” threat detection, risk assessment and mitigation using machine learning across networks, endpoints and identities.

๐Ÿ“‹ Course Objectives

1. Detect intrusions and malware with ML.
2. Spot anomalous behaviour across the stack.
3. Prioritise and assess cyber risk.
4. Inform and drive mitigation.
5. Account for adversarial threats to ML.

๐Ÿ‘ฅ Who Should Enroll?

โ€ข Security analysts and engineers
โ€ข Risk and SOC professionals
โ€ข Security data scientists
โ€ข Students of cybersecurity

๐Ÿš€ Key Learning Outcomes

โ€ข The ability to apply AI to threat detection.
โ€ข A detection-and-risk project.
โ€ข A risk-driven security approach.
โ€ข A verified e-Certificate of competency and e-Marksheet from the Deep Science & Technology Consortium.

๐Ÿ’Ž What You'll Gain

๐ŸŽฅ

Live & Recorded Sessions

Lifetime access to class recordings
๐ŸŽ“

e-Certificate on Completion

Cryptographically verified credential
๐Ÿ’ฌ

Post-Programme Support

Direct access to mentors & council
๐Ÿ’ป

Hands-On Experience

Notebooks, real-world code & datasets

Curriculum Outline

Module 1 Telemetry

Security Data and Its Limits

โ€ข Endpoint, network and identity telemetry: coverage gaps and blind spots
โ€ข Mapping detections to MITRE ATT&CK techniques rather than tool alerts
โ€ข Log normalisation, enrichment and the cost of retention decisions

Module 2 Detection

Anomaly and Behavioural Analytics

โ€ข Baselining user and entity behaviour, and handling legitimate change
โ€ข Supervised detection where labels exist; unsupervised where they do not
โ€ข Beaconing, lateral movement and exfiltration signatures in practice
โ€ข Alert fatigue as the primary failure mode of security analytics

Module 3 Adversarial

Attacks Against the Models Themselves

โ€ข Evasion of malware and phishing classifiers
โ€ข Data poisoning of models trained on customer telemetry
โ€ข Prompt injection and data exfiltration through LLM-based tooling

Module 4 Response

Triage, Automation and Containment

โ€ข Risk scoring and alert triage that preserves analyst judgement
โ€ข SOAR playbooks and choosing what is safe to automate
โ€ข Measuring detection engineering: time to detect, time to contain, coverage

Module 5 Programme

Risk Mitigation and Assurance

โ€ข Threat modelling for AI-enabled systems and their supply chain
โ€ข Purple-team validation of detections against live technique emulation
โ€ข Reporting risk reduction in terms an executive can act on

Technical Specifications

ParameterRequirement
Covered Tool / PlatformPython
Covered Tool / PlatformTensorFlow
Covered Tool / PlatformPyTorch
Covered Tool / PlatformKeras
Covered Tool / PlatformScikit-learn
Covered Tool / PlatformJupyter Notebook
Covered Tool / PlatformGoogle Colab
Covered Tool / PlatformHugging Face

Frequently Asked Questions

This is an Recorded Lectures (Self-Paced) course delivered via our e-LMS platform. You will have access to pre-recorded video lectures, reading materials, assignments, quizzes, and hands-on projects that you can complete at your own pace.

Yes! Upon successful completion of all modules, assignments, and assessments, you will receive an e-Certification along with an e-Marksheet from DSTC (DSTC) that you can showcase on your CV and LinkedIn profile.

Learners should have a foundational understanding of Artificial Intelligence concepts. Familiarity with basic tools and programming is recommended.

You will have access to all course materials for the duration of 3 Days. The self-paced format allows you to learn according to your own schedule through our online learning management system.

Yes, dedicated mentor support is available throughout the course. You can reach out for doubt-clearing sessions, project guidance, and career advice related to Artificial Intelligence. Our mentors are industry experts and experienced professionals. Enroll in AI for Cybersecurity: Threat Detection and Risk Mitigation today and take the next step in your professional journey. With expert-curated content, practical projects, and industry-recognized certification, this course is your gateway to mastering Artificial Intelligence skills that matter.

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