In today's rapidly evolving digital landscape, cyber threats are becoming increasingly sophisticated and elusive. Attackers employ advanced threat hunting techniques to infiltrate systems, often bypassing traditional security measures. For cybersecurity specialists and security professionals, this presents a significant challenge: how can we defend against threats that are designed to evade detection? The answer lies in integrating data science with modern cyber threat hunting practices.

Threat Hunting Techniques

Threat Hunting Techniques


Instructors: Archan Choudhury
Access provided by Kalinga Institute of Industrial Technology
Recommended experience
What you'll learn
Explore the full threat hunting lifecycle and how machine learning strengthens hypothesis-driven threat investigation and detection.
Analyze and visualize raw log data using Pandas, Seaborn, and Matplotlib in Jupyter for effective cyber threat hunting and threat analysis.
Apply advanced threat hunting techniques such as Isolation Forest and DBSCAN to detect anomalies across real-world telemetry data.
Design and execute a complete ML-powered hunt in Splunk and Jupyter to identify suspicious behavior and strengthen threat detection workflows.
Skills you'll gain
- Data Cleansing
- Applied Machine Learning
- Cyber Attacks
- MLOps (Machine Learning Operations)
- Security Information and Event Management (SIEM)
- Data Preprocessing
- Threat Detection
- Cybersecurity
- Data Science
- Data Transformation
- Data Wrangling
- Cyber Threat Intelligence
- Cyber Threat Hunting
- Automation
- Data Analysis
- Anomaly Detection
- Threat Management
- Unsupervised Learning
Details to know

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There are 6 modules in this course
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