Build the machine learning foundation for healthcare demands! Learn how to turn complex clinical data into models that drive decision support, early warning, diagnostic assistance, and personalized treatment insights.

Machine Learning for Healthcare Applications
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Machine Learning for Healthcare Applications
This course is part of Data Science for Healthcare Specialization


Instructors: Ramesh Sannareddy
Included with
Recommended experience
What you'll learn
Classify healthcare problems as supervised, unsupervised, or temporal ML tasks aligned with clinical workflows.
Build and train clinical ML models using meaningful features for prediction, clustering, and time-based risk scoring.
Evaluate models using discrimination, calibration, and clinical utility metrics with patient- and time-aware validation.
Interpret outputs, detect bias or leakage, and deliver actionable results to technical and clinical stakeholders.
Skills you'll gain
- Model Evaluation
- Logistic Regression
- Machine Learning Algorithms
- Dimensionality Reduction
- Machine Learning Methods
- Model Training
- Data Preprocessing
- Unsupervised Learning
- Health Informatics
- Supervised Learning
- Forecasting
- Machine Learning
- Applied Machine Learning
- Predictive Modeling
- Predictive Analytics
- Decision Tree Learning
- Time Series Analysis and Forecasting
- Feature Engineering
- Clinical Informatics
Tools you'll learn
Details to know

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February 2026
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There are 4 modules in this course
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