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<p>A Python framework for creating reproducible, maintainable and modular data science code: </p>
↗
https://github.com/quantumblacklabs/kedro
Flavio Juvenal
Nov 7, 2021
Topics:
etl, ml, pipeline
<p>Using AntiPatterns to avoid MLOps Mistakes: </p>
↗
https://arxiv.org/abs/2107.00079
Flavio Juvenal
Jul 5, 2021
Topics:
antipatterns, ml, mlops, production
<p>Awesome Machine Learning FAQ </p>
↗
https://sebastianraschka.com/faq/index.html
Flavio Juvenal
Jun 8, 2021
Topics:
ai, deeplearning, faq, ml
<p>Extrapolating to Unnatural Language Processing with GPT-3's In-context Learning: The Good, the Bad, and the Mysterious </p>
↗
http://ai.stanford.edu/blog/in-context-learning/
Flavio Juvenal
Jun 8, 2021
Topics:
ai, deeplearning, gpt, ml, nlp
<p>Overview of Consistency training on Deep Learning: contrastive learning, energy-based modelling, etc. </p>
↗
https://rudygilman.com/consistency-training/2021/04/20/consistency-I.html
Flavio Juvenal
Apr 27, 2021
Topics:
contrastive, deeplearning, ml
<p>Hold-out validation vs. cross-validation: </p>
↗
https://stats.stackexchange.com/questions/104713/hold-out-validation-vs-cross-validation
Flavio Juvenal
Apr 19, 2021
Topics:
ml
<p>Using a fixed training-development-test split in sklearn: </p>
↗
https://www.wellformedness.com/blog/using-a-fixed-training-development-test-split-in-sklearn/
Flavio Juvenal
Apr 19, 2021
Topics:
ml, python, sklearn
<p>Nested Cross-Validation for Machine Learning with Python: </p>
↗
https://machinelearningmastery.com/nested-cross-validation-for-machine-learning-with-python/
Flavio Juvenal
Apr 19, 2021
Topics:
ml, python, sklearn
<p>Using PyTorch + NumPy? You're making a mistake. </p>
↗
https://tanelp.github.io/posts/a-bug-that-plagues-thousands-of-open-source-ml-projects/
Flavio Juvenal
Apr 12, 2021
Topics:
deep-learning, ml, numpy, pytorch
<p>Tesla's Data Engine and what we should all learn from it: </p>
↗
https://www.linkedin.com/pulse/teslas-data-engine-what-we-should-all-learn-from-tommaso-gritti/
Flavio Juvenal
Mar 10, 2021
Topics:
data-engineering, ml, test
<p>Minimal tutorial on packing (pack_padded_sequence) and unpacking (pad_packed_sequence) sequences in pytorch: </p>
↗
https://gist.github.com/HarshTrivedi/f4e7293e941b17d19058f6fb90ab0fec
Flavio Juvenal
Feb 19, 2021
Topics:
deep-learning, ml, nlp, pytorch
<p>Most Common Neural Net PyTorch Mistakes: </p>
↗
https://missinglink.ai/blog/computer-vision/most-common-neural-net-pytorch-mistakes/
Flavio Juvenal
Dec 17, 2020
Topics:
ai, deep-learning, ml, pytorch
<p>Understanding “Deep Double Descent”: bigger models are always better? </p>
↗
https://www.greaterwrong.com/posts/FRv7ryoqtvSuqBxuT/understanding-deep-double-descent
Flavio Juvenal
Oct 21, 2020
Topics:
ai, deep-learning, ml
<p>Why Deep Learning Works Even Though It Shouldn’t </p>
↗
https://moultano.wordpress.com/2020/10/18/why-deep-learning-works-even-though-it-shouldnt/
Flavio Juvenal
Oct 20, 2020
Topics:
ai, data-science, deep-learning, ml
<p>Hierarchical Clustering and Dendrogram Tutorial: </p>
↗
https://joernhees.de/blog/2015/08/26/scipy-hierarchical-clustering-and-dendrogram-tutorial/
Rebeca Sarai
Sep 25, 2020
Topics:
clustering, ml
<p>Effective testing for machine learning systems: </p>
↗
https://www.jeremyjordan.me/testing-ml/
Rebeca Sarai
Sep 4, 2020
Topics:
ml, testing
<p>"While researchers try to outdo one another on contrived benchmarks, one in every nine people in the world is starving" from Too many AI researchers think real-world problems are not relevant: </p>
↗
https://www.technologyreview.com/2020/08/18/1007196/ai-research-machine-learning-applications-problems-opinion/
Rebeca Sarai
Aug 24, 2020
Topics:
ia, ml
<p>Data Science Meets Devops: MLOps with Jupyter, Git, & Kubernetes </p>
↗
https://blog.kubeflow.org/mlops/
Flavio Juvenal
Aug 5, 2020
Topics:
devops, jupyter, kubernetes, ml
<p>Create UIs for prototyping your machine learning model, compatible with Jupyter Notebooks: </p>
↗
https://github.com/gradio-app/gradio
Flavio Juvenal
Jul 17, 2020
Topics:
ml, python, ui
<p>Train sklearn 100x faster: </p>
↗
https://medium.com/building-ibotta/train-sklearn-100x-faster-bec530fc1f45
Flávio Juvenal
Mar 25, 2020
Topics:
data-science, ml, sklearn
<p>The New Business of AI (and How It’s Different From Traditional Software): </p>
↗
https://a16z.com/2020/02/16/the-new-business-of-ai-and-how-its-different-from-traditional-software/
Flávio Juvenal
Feb 18, 2020
Topics:
ai, business-model, data, ml, startups
<p>A gentle introduction to Visual Question Answering (VQA) using neural networks: </p>
↗
https://victorzhou.com/blog/easy-vqa/
Flávio Juvenal
Feb 18, 2020
Topics:
ai, ml, vqa
<p>A Practical Guide to Feature Engineering in Python: </p>
↗
https://heartbeat.fritz.ai/a-practical-guide-to-feature-engineering-in-python-8326e40747c8
Flávio Juvenal
Feb 4, 2020
Topics:
data-science, ml, python
<p>Cookiecutter Data Science: </p>
↗
https://drivendata.github.io/cookiecutter-data-science/
Flávio Juvenal
Jan 27, 2020
Topics:
ai, data-science, ml
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