Samuel Kim

Senior Research Scientist at The Johns Hopkins University Applied Physics Laboratory

Cambridge, Massachusetts, United States
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Summary

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Senior
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Top School
Samuel Kim is a senior research scientist at Johns Hopkins APL with 13 years of experience bridging computational physics, photonics, and machine learning. He earned a PhD from MIT where he designed silicon-photonic lenses for solid-state LiDAR, developed deep learning architectures for symbolic regression of PDEs and image-driven systems, and created Bayesian optimization approaches for high-dimensional materials design. His work spans hands-on electromagnetic simulation and custom numerical code for thermal and additive-manufacturing modeling to leadership as co-founder/CSO of a photonics startup. At APL he applies multidisciplinary expertise to metamaterials, antennas, sensors, and quantum devices, often combining COMSOL/CST modeling with bespoke algorithms. Known for reducing system complexity—e.g., achieving 2x horizontal FOV with orders-of-magnitude simplification versus OPAs—he brings both theoretical rigor and practical engineering to high-impact applied research. Based in Cambridge, MA, he blends academic depth with entrepreneurial drive to accelerate complex, physics-informed technology development.
code13 years of coding experience
job4 years of employment as a software developer
bookMaster of Science - MS, Electrical Engineering and Computer Science (EECS), Master of Science - MS, Electrical Engineering and Computer Science (EECS) at Massachusetts Institute of Technology
bookBachelor’s Degree, Physics, Bachelor’s Degree, Physics at Harvard University
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Github Skills (49)

visualization9
julia9
symbolic-regression9
regression8
gpu8
wrapping8
periodic8
inverse8
paths8
particle7
nonlinear7
pyplot7
discovery7
deep-learning7
kernel6

Programming languages (5)

JuliaCJupyter NotebookMATLABPython

Github contributions (5)

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samuelkim314/DeepBO

Jul 2022 - Sep 2022

Contributions:13 commits, 13 pushes, 1 branch in 2 months
samuelkim314/DeepSymReg

Oct 2020 - Mar 2022

Official repository for the paper "Integration of Neural Network-Based Symbolic Regression in Deep Learning for Scientific Discovery"
Contributions:5 commits, 3 PRs, 5 pushes in 1 year 5 months
pytorchregressiondeep-learningequation-discoverysymbolic-regression
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Samuel Kim - Senior Research Scientist at The Johns Hopkins University Applied Physics Laboratory