When you enroll in this course, you'll also be enrolled in this Specialization.
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Gain a foundational understanding of a subject or tool
Develop job-relevant skills with hands-on projects
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There are 3 modules in this course
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.
This course provides a practical, end-to-end exploration of financial fraud analytics across banking, credit, and payment systems. Learners progress from foundational banking concepts and credit risk classification to advanced fraud detection, efficiency modeling, and profit-and-loss analysis. The course integrates logistic regression, risk analytics, and Data Envelopment Analysis (DEA) to bridge predictive modeling with operational and financial performance evaluation.
What makes this course unique is its combined focus on machine learning, financial efficiency, and real-world fraud decision-making. Instead of treating fraud detection as a standalone modeling task, the course emphasizes interpretability, regulatory relevance, and business impact. Through applied examples and structured analytics workflows, learners develop job-ready skills aligned with roles in financial risk analytics, fraud prevention, and data-driven decision support.
This module introduces learners to the structure of the banking system, core credit evaluation concepts, and foundational machine learning techniques used in fraud detection. Learners explore how financial institutions assess borrower risk, apply logistic regression for credit classification, and evaluate fraud prediction models using performance metrics critical to regulated financial environments.
What's included
6 videos4 assignments
Show info about module content
6 videos•Total 42 minutes
Introduction to Banking System•6 minutes
Laon Status Grade•10 minutes
Logistic Regression and Logistic Question•7 minutes
Beta Value•5 minutes
Predict Value•7 minutes
Performance Value•6 minutes
4 assignments•Total 60 minutes
Foundations of Banking, Credit, and Fraud Analytics•30 minutes
Understanding the Banking and Credit Ecosystem•10 minutes
Machine Learning for Credit Risk Classification•10 minutes
Credit Fraud Prediction and Model Evaluation•10 minutes
Credit Fraud Detection and Risk Modeling
Module 2•2 hours to complete
Module details
This module focuses on applied fraud detection within credit payment systems, emphasizing real-time risk evaluation, analytics setup, and market-driven risk considerations. Learners examine fraud model evaluation metrics, analytics infrastructure, and efficiency benchmarking techniques used to assess trading and financial market operations.
What's included
6 videos4 assignments
Show info about module content
6 videos•Total 52 minutes
Fals Positive Rate•4 minutes
Introduction to Fraud Detection in Credit Payments•6 minutes
Installation of Packages•10 minutes
Risk Analytics•11 minutes
Trading Companies and Stocks•11 minutes
DEA with Input or Profit and Loss•10 minutes
4 assignments•Total 40 minutes
Credit Fraud Detection and Risk Modeling•10 minutes
Evaluating Fraud Models and Introducing Payment Fraud•10 minutes
Analytics Setup and Market Risk Context•10 minutes
Financial Markets and Efficiency Analysis Basics•10 minutes
Advanced Efficiency, Profitability, and Fraud Insights
Module 3•2 hours to complete
Module details
This module advances learners into efficiency modeling, profitability analysis, and constraint-based decision frameworks used in financial fraud analytics. Learners apply DEA models, interpret profit and loss reports, and compare Variable and Constant Returns to Scale assumptions to support data-driven fraud and operational decisions.
What's included
6 videos4 assignments
Show info about module content
6 videos•Total 48 minutes
Efficiency Profit and Loss•6 minutes
Rank Functions•7 minutes
RHS Constaints•11 minutes
Profit and Loss Report•8 minutes
VRS•12 minutes
CRS Efficiency and Efficiency•5 minutes
4 assignments•Total 60 minutes
Advanced Efficiency, Profitability, and Fraud Insights•30 minutes
Measuring Profitability and Operational Efficiency•10 minutes
Constraints, Reporting, and Performance Analysis•10 minutes
Advanced Efficiency Models for Fraud Decision-Making•10 minutes
Earn a career certificate
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What will I get if I subscribe to this Specialization?
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Is financial aid available?
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