By the end of this course, learners will be able to analyze banking and credit systems, apply machine learning techniques for fraud detection, evaluate financial risk using efficiency models, and interpret profitability reports to support data-driven decisions. Learners will gain the ability to assess credit risk, detect fraudulent payment patterns, and evaluate operational efficiency using industry-relevant analytical frameworks.

Analyze Financial Fraud Using Machine Learning Analytics

Analyze Financial Fraud Using Machine Learning Analytics
This course is part of Apply Machine Learning for Predictive Business Analytics Specialization

Instructor: EDUCBA
Access provided by Prologis
13 reviews
Recommended experience
What you'll learn
Analyze banking, credit, and payment systems to identify fraud and risk patterns.
Apply machine learning and efficiency models to detect fraud and assess performance.
Interpret risk, profitability, and efficiency outputs for data-driven financial decisions.
Skills you'll gain
- Lending and Underwriting
- Benchmarking
- Applied Machine Learning
- Financial Statement Analysis
- Financial Systems
- Operations Research
- Data-Driven Decision-Making
- Statistical Machine Learning
- Anomaly Detection
- Loans
- Financial Regulation
- Financial Data
- Regulatory Compliance
- Performance Measurement
- Operational Analysis
- Profit and Loss (P&L) Management
- Risk Modeling
Details to know

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12 assignments
February 2026
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Reviewed on Jul 28, 2026
The focus on model interpretability and SHAP values in fraud detection was top-notch. It taught me not just how to catch fraud, but how to explain model predictions to auditors.
Reviewed on Jul 26, 2026
One of the best practical analytics courses I’ve taken. The focus on feature engineering for credit card fraud detection gave me immediate tools for my daily work.
Reviewed on Jul 27, 2026
It provides exact frameworks for tackling real-time fraud prevention. A real asset for anyone working in fintech, banking, or corporate risk.



