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Hi there 👋

My expertise lies in designing and implementing custom machine learning solutions that drive research and development, with a focus on AI-powered decision-making. With a proven track record of collaborating closely with academic and industry partners, I excel at translating complex domain-specific challenges into efficient machine-learning codes and workflows. During my 9-year tenure at the U.S. Department of Energy’s Oak Ridge National Laboratory, I led the development of machine learning codes that enabled autonomous experimentation in scanning probe and electron microscopy, and were later extended to neutron scattering experiments, chemical synthesis, and battery state-of-health assessments. My primary interest lies in developing the "smart labs" of the future, where human-AI collaboration paves the way for rapid scientific innovation and practical applications in various fields.

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My Recent Papers 📜

Maxim Ziatdinov's Projects

activechannellearning icon activechannellearning

Automated selection of channels with best predictive capacity in multimodal imaging and spectroscopy experiments

aicrystallographer icon aicrystallographer

Here, we will upload our deep/machine learning models and 'workflows' (such as AtomNet, DefectNet, SymmetryNet, etc) that aid in automated analysis of atomically resolved images

aiml-tutorials icon aiml-tutorials

Repository for containing the tutorial series for the AI/ML working group

aps2020tutorial icon aps2020tutorial

Tutorial on image analysis with deep / machine learning for APS-2020 meeting in Denver

atomai icon atomai

Deep and machine learning for atomic-scale and mesoscale data

awesome-self-driving-labs icon awesome-self-driving-labs

A curated list of self-driving laboratories that combine hardware automation and artificial intelligence to accelerate scientific discovery.

causal-learn icon causal-learn

Python translation (and extension) of the Tetrad java code.

e2cnn icon e2cnn

E(2)-Equivariant CNNs Library for Pytorch

ferrosim icon ferrosim

Ferroelectric Simulation using a discrete Landau formulation on a 2D grid

gp icon gp

This repo will now be developed and maintained https://github.com/ziatdinovmax/GPim

gpax icon gpax

Gaussian Processes for Experimental Sciences

gpim icon gpim

Gaussian processes and Bayesian optimization for images and hyperspectral data

livecode-papers icon livecode-papers

Writing scientific papers in the form of interactive Jupyter/Colab notebooks

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