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Artem Ryblov’s Data Science Weekly Artem Ryblov’s Data Science Weekly @data_science_weekly · 684 subscribers
Post #16 216
Applying Machine Learning by Eugene Yan

"Applying machine learning is hard. Many organizations have yet to benefit from ML, and most teams still find it tricky to apply it effectively.

Though there are many ML courses, most focus on theory and students finish without knowing how to apply ML. Practical know-how is gained via hands-on experience and seldom documented—it's hard to find it in a textbook, class, or tutorial. There's a gap between knowing ML vs. applying it at work.

To fill this gap, ApplyingML collects tacit/tribal/ghost knowledge on applying ML via curated papers/blogs, guides, and interviews with ML practitioners. In a nutshell, it's 1/3 applied-ml, 1/3 ghost knowledge, and 1/3 Tim Ferriss Show. The intent is to make it easier to apply—and benefit from—ML at work."

Actually, the site contains 3 types of resources:
- Guides (teardowns, ml guides, non-ml guides)
- Interviews with machine learning practitioners
- Papers (curated list divided by topics)

Site: https://applyingml.com/
Personal site of Eugene Yan: https://eugeneyan.com/

#armknowledgesharing #armarticles
#machinelearning #ml #experience #production #datascience #blogs

@data_science_weekly
Applyingml ApplyingML - Papers, Guides, and Interviews with ML practitioners Curated papers and blogs, ghost knowledge, and interviews with experienced ML practitioners on how to apply machine learning in industry.
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