Learners will analyze fraud patterns, evaluate fraud detection techniques, and apply data-driven analytical approaches to identify and mitigate fraudulent activities. This course builds a strong foundation in fraud concepts while progressively introducing modern fraud analytics methods, including Big Data approaches and machine learning techniques such as supervised and unsupervised learning. Learners will gain a structured understanding of the fraud lifecycle, high-level fraud analytics strategies, and the measurable business benefits of analytics-driven fraud prevention.

Analyze Fraud Using Data Analytics and R
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Analyze Fraud Using Data Analytics and R
This course is part of Apply R for Business Analytics Projects Specialization

Instructor: EDUCBA
Included with
Recommended experience
What you'll learn
Analyze fraud patterns and evaluate common fraud detection techniques.
Apply data-driven and machine learning approaches to identify fraudulent behavior.
Interpret real-world fraud scenarios to support informed risk and prevention decisions.
Skills you'll gain
Tools you'll learn
Details to know

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February 2026
8 assignments
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