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#56 Causal & Probabilistic Machine Learning, with Robert Osazuwa Ness

Learning Bayesian Statistics

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The Power of Causal Modling and Machine Learning

Model building is easier to think about cause and effects than correlation. Say, ifmi be wrong about the model, but if a model is right, then there should be some variance there. And so that is, i think, another understated power of causal modling and machine learning. If we can use causal in variants to kind of break our motto up into components and then manage those components separately in code using just normal engineering patterns has been around for 30 years.

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