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World Class Data-Driven Risk Analysis - Theory & Application

4.40
1,255 students
34m
Updated Apr 2026

What you'll learn

The Risk Formula - The foundation of risk modeling.
Risk Scenarios and Risk Registers - Effective data capture and organization.
Data Types and Data Sources - How to spot data issues.
Confidence and Certainty - Accuracy and precision in risk management.
Risk Resolution - How to engage stakeholders, the right way.
Risk vs. Expected Loss - Know the difference and why it matters.
Expected vs. Actual Loss - Theory meets the real world.
Data Types and Data Origins - Interpret data and avoid hidden dangers.
Modeling Risk with Python - Virtual experiments to confirm or refute a risk hypothesis.

Course Description

After completing this course, risk professionals will be able to identify and improve existing data-driven risk management programs and improve communication with decision making stakeholders. Budding risk analysts will get a solid education in the most overlooked and misunderstood elements of data-driven risk management. The course culminates in a brief introduction to modeling risk using Python notebooks — source code included.

Applications: Supply Chain Risk, Cyber Risk, Medical & Health Risk, Insurance, and Business Risk.

Risk Analysis - Part One
Introduces the world class instructor, the basic tools of risk management, and the macro-scale problems risk practitioners face.  Topics include:

  • The Risk Formula as a wireframe for risk modeling as well as commonly encountered variations of the formula.

  • Risk Scenarios and Risk Registers as basic organizational and data capture techniques.

  • Time is an implied and often overlooked element of risk analysis. 

  • Data Types and Data Origin which are the foundation of data interpretation. 

  • Confidence and Certainty that characterize overlooked issues with accuracy and precision.

    And finally,

  • Risk Resolution is introduced to explain and communicate the problem of risk sprawl.

Risk Analysis - Part Two

Covers more advanced fundamentals, such as:

  • Risk vs. Expected Loss

  • Expected vs. Actual Loss

  • Data Types and Data Sources - Understand and interpret data.

  • Heat Maps

It also introduces risk modeling in Python and a walk though of the course code.

Requirements

  • No experience necessary.
  • Start your journey into data driven risk analysis and modeling right here, right now!
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World Class Data-Driven Risk Analysis - Theory & Application

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Course Details

  • Level All Levels
  • Lectures 8
  • Duration 34m