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Mathintermediate

📊Probability and Statistics for Machine Learning

Build the mathematical foundation every ML practitioner needs: go from sample spaces and distributions to Bayesian inference and hypothesis testing. By the end you will be able to choose the right distribution for any modelling problem, derive maximum likelihood estimators, reason about uncertainty the Bayesian way, and correctly interpret p-values and confidence intervals.

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Lessons in order

  1. 1
    Math
    Random Variables and Distributions
    Start
  2. 2
    Math
    Expectation, Variance, and the CLT
    Start
  3. 3
    Math
    Bayesian Inference
    Start
  4. 4
    Math
    Estimation and Hypothesis Testing
    Start