0:00-42:19
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With all the LLM hype, it’s worth remembering that enterprise stakeholders want answers to “why” questions. Enter causal inference. Paul Hünermund has been doing research and writing on this topic for some time and joins us to introduce the topic. He also shares some relevant trends and some tips for getting started with methods including double machine learning, experimentation, difference-in-difference, and more.
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Featuring:
- Paul Hünermund – Website, LinkedIn, X
- Chris Benson – Website, GitHub, LinkedIn, X
- Daniel Whitenack – Website, GitHub, X
Show Notes:
- How Can Causal Machine Learning Improve Business Decisions?
- Causal Inference is More than Fitting the Data Well
- Causal Data Science in Practice
- Causal Discovery
- DoWhy Github
- The Book of Why
- Causal Data Science Meeting
- Paul’s study on causal ML adoption in industry (incl. an overview of useful software packages in Table 3)
- Causal Data Science MOOC on Udemy
Upcoming Events:
- Register for upcoming webinars here!
Fastly
fastly.comfastly.com
fastly.comFly.io
fly.ioChangelog News
changelog.comWebsite
p-hunermund.comLinkedIn
linkedin.comX
x.comWebsite
chrisbenson.comGitHub
github.comLinkedIn
linkedin.comX
x.comWebsite
datadan.ioGitHub
github.comX
x.comHow Can Causal Machine Learning Improve Business Decisions?
causalscience.orgCausal Inference is More than Fitting the Data Well
causalscience.orgCausal Data Science in Practice
causalscience.orgCausal Discovery
blog.ml.cmu.eduDoWhy Github
github.comThe Book of Why
penguin.co.ukCausal Data Science Meeting
causalscience.orgCausal Data Science MOOC on Udemy
udemy.comupcoming webinars here
practicalai.fm