Machine Learning in Healthcare (no coding required!)

Learn how to apply machine learning techniques in healthcare

Ratings 4.48 / 5.00
Machine Learning in Healthcare (no coding required!)

What You Will Learn!

  • Health data 101
  • How to plan the analysis and to get buy in
  • What you should know about health data for predictive modeling purposes
  • What predictive model features are, and how to create them
  • Statistical model primer
  • How to build predictive models: step by step guide: using case study
  • How to assess model performance

Description

This course will teach you how to work with health data, using machine learning models to find actionable insights.

Through a step-by-step guided case study, you will learn practical skills that you can apply immediately!


We will use a case study: Opioid Abuse Prediction for a clinic


Topics we will cover:

  1. Health Data (sources, types, features, error handling)

  2. Logistics of machine learning

  3. What predictive model features are, and how to create them

  4. A statistical primer, highlighting key machine learning models and concepts

  5. Build a decision tree, logistic regression and random forest through

    1. Opioid abuse prediction case study

    2. KNIME (a free machine learning software, no coding required!)

  6. Assess model performance

  7. Output presentation and implementation

Who Should Attend!

  • Beginner to Intermediate analysts of health data
  • Public health/Epidemiology/Bioinformatics analysts
  • Actuarial/Statistical analysts

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Tags

  • Machine Learning

Subscribers

2510

Lectures

39

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