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Hey there! 👋

I'm Plamen, and I've been passionately contributing to the open-source software community since 2018.

🚀 About Me

My open-source journey began as a software engineer at DAI-Lab, where I faced and conquered a multitude of intriguing challenges. These experiences not only sharpened my skills but also broadened my horizons in the realms of open source and software engineering.

🔭 What I'm Up To

I'm currently a part of the fantastic team at DataCebo, the proud creators of SDV, the largest ecosystem for synthetic data generation and evaluation. My role involves developing new features, refactoring, and maintaining various projects within this ecosystem. Here are some of the key projects I'm actively involved in:

  • SDV: The Synthetic Data Vault, a powerful synthetic data generation tool that maintains the same format and statistical properties as the real data.

  • RDT: Reversible Data Transforms, a Python library for transforming raw data into fully numerical data.

  • CTGAN: A collection of deep learning-based synthetic data generators for single table data.

  • Copulas: A Python library for modeling multivariate distributions and sampling from them using copula functions.

  • DeepEcho: A synthetic data generation Python library for mixed-type, multivariate time series.

  • SDMetrics: A library that evaluates synthetic data by comparing it to the real data you're trying to mimic.

  • SDGym: Synthetic Data Gym, a framework for benchmarking the performance of synthetic data generators based on SDV and SDMetrics.

🏆 Contributions

Over the years, I've had the privilege of contributing to several public repositories, including:

  • SteganoGAN: A tool for creating steganographic images using adversarial training.

  • MLPrimitives: Pipelines and primitives for machine learning and data science.

  • MLBlocks: A simple framework for composing end-to-end tunable machine learning pipelines.

  • BTB: Bayesian Tuning and Bandits, a tool for hyperparameter tuning and model selection.

  • AutoBazaar: An AutoML system combining BTB, MLPrimitives, and MLBlocks.

  • mit-d3m-ta2: MIT-Featuretools TA2 submission for the D3M program.

  • ATM: Auto Tune Models, an AutoML system designed with ease of use in mind.

  • Orion: A machine learning library for unsupervised time series anomaly detection.

  • SigPro: An end-to-end solution for efficiently applying multiple signal processing techniques to raw time series data.

  • Draco: A collection of end-to-end solutions for machine learning problems commonly found in monitoring wind energy production systems.

Feel free to explore these projects and don't hesitate to reach out if you have any questions or would like to collaborate!

Plamen Valentinov Kolev's Projects

atm icon atm

Auto Tune Models - A multi-tenant, multi-data system for automated machine learning (model selection and tuning).

autobazaar icon autobazaar

AutoBazaar: An AutoML System from the Machine Learning Bazaar

ballet icon ballet

☀️🦶 A lightweight framework for collaborative, open-source, data science

btb icon btb

Bayesian Tuning and Bandits: a simple, extensible library for developing AutoML systems.

cadmus icon cadmus

A GUI frontend for @werman's Pulse Audio real-time noise suppression plugin

copulas icon copulas

A library to model multivariate data using copulas.

ctgan icon ctgan

Conditional GAN for generating synthetic tabular data.

deepecho icon deepecho

Synthetic Data Generation for mixed-type, multivariate time series.

diffusers icon diffusers

🤗 Diffusers: State-of-the-art diffusion models for image and audio generation in PyTorch

dryscrape icon dryscrape

[not actively maintained] A lightweight Python library that uses Webkit to enable easy scraping of dynamic, Javascript-heavy web pages

greenguard icon greenguard

An automl library to predict the health of machinery used to generate renewable energy.

mit-d3m icon mit-d3m

MIT tools to work with datasets in the D3M format.

mlblocks icon mlblocks

A library for composing end-to-end tunable machine learning pipelines.

orion icon orion

An auto machine learning library for detecting anomalies in telemetry data from satellites.

piex icon piex

Pipeline explorer- Exploring millions of pipelines learnt so far using MLBlocks and MLPrimitives.

pyclickup icon pyclickup

a python library for accessing the ClickUp api

rdt icon rdt

A repository with reversible data transforms

sdgym icon sdgym

Benchmarking Synthetic data generation methods and Introducing Conditional Tabular GAN.

sdmetrics icon sdmetrics

Metrics to evaluate quality and efficacy of synthetic datasets.

sdv icon sdv

Automated hierarchical generative modeling for a relational time series databases and sampling

smapy icon smapy

Simple Modular APIs in Python

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