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🥇 I'm proficient with:
- torch, scikit-learn, scikit-optimize, gplearn, numpy/scipy/statsmodels, pandas, xgboost/catboost/lgbm, matplotlib/seaborn/plotly, albumentations, category_encoders, HF transformers/diffusers, llamacpp, qdrant, fastapi, celery, streamlit
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🥈 I know my way around:
- spark, SQL, keras/tensorflow, OpenGL, OpenCV, CI/CD pipelines
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🎖 Since I started, I've learned how to:
- never accept the null hypothesis;
- stop misinterpreting p-values;
- read impurity-based, permutation and SHAP feature importances properly;
- spot the outliers in several dimensions at once with Mahalanobis distance;
- combat skewness with QuantileTransformer/PowerTransformer;
- calibrate;
- avoid the PCA trap in classification;
- engineer features with symbolic regression;
- effectively finetune SD using Dreambooth technique;
- use vector databases to supply context for language models;
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🎖 In the past year, I've learned:
- the actual difference between Adam and AdamW;
- proper separation of evaluation and decision making;
- the power of generalized linear models;
- numerous applications IoU may have;
- the match between kernel regression and two-layer neural networks;
- augmenting the embeddings rather than raw data;
- that the LOOCV MSE for KNN equals the training MSE for (K+1)NN;
- the importance of embeddings' distances for the reasoning of LLMs;
- the difficulties of separating epistemic and aleatoric uncertainty;
- how to evaluate ensembling quality using information theory;
- how to beat OpenAI using a 7B model running on CPU.
Pinned Loading
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art-challenge
art-challenge PublicCV: Image classification with a few plot twists.
Jupyter Notebook
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gravitational_wave_detection
gravitational_wave_detection PublicKaggle G2Net Gravitational Wave Detection
Jupyter Notebook
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kaggle_disaster_tweets
kaggle_disaster_tweets PublicNLP: is this tweet about a real disaster?
Jupyter Notebook
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symbolic_regression
symbolic_regression PublicSymbolic regression: a powerful yet underrated tool.
Jupyter Notebook 1
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