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Machine Learning Engineer

root-access · New York City
Full-timeEngineeringTechnology$179,000–$241,000/yr
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About the Machine Learning Engineer role

Machine Learning Engineer positions focus on delivering results in their domain. This page aggregates open Machine Learning Engineer roles and what employers typically expect.

About the company Root Access is a frontier electronics company. We are a NYC-based startup funded by top investors. Our team is a passionate mix of engineers across electrical, firmware, software, and machine learning. Core Responsibilities - Architect Physics Foundation Models: Design and train deep learning models. - Build the ECAD Data Pipeline: Develop high-performance asset pipelines to convert geometric, discrete, and multi-layer PCB files (ODB++, IPC-2581, STEP, Gerber) into continuous space data. - Multi-Modal Architecture Integration: Collaborate on connecting upstream Graph Neural Networks (GNNs) or LLMs mapping schematic topologies to downstream spatial physics engines. - Optimize for Real-Time Execution: Optimize training and inference pipelines on GPU clusters. Required Technical Skills & Qualifications - Education: Master’s or Ph.D. in Computer Science, Mathematics, EE, Physics, or a related quantitative field with a focus on Scientific Machine Learning (SciML). - Deep Learning Frameworks: 4+ years of expert-level experience with PyTorch or JAX. - SciML Expertise: Direct, hands-on experience building and training PINNs, FNOs, etc. - Mathematical Depth: Exceptional understanding of partial differential equations (PDEs), vector calculus, automatic differentiation (autograd), and numerical optimization algorithms (Adam, L-BFGS). - Data Pipelines: Strong proficiency in manipulating spatial or geometric datasets using Python libraries (NumPy, SciPy, Shapely, Open3D, or custom voxelization matrices).

Salary estimate

$179,000 – $241,000/yr
Provided by the employer.

Skills for this role

PythonPytorchMachine Learning

Resume tips for Machine Learning Engineer applicants

Interview preparation

Prepare concrete STAR-format stories that show Machine Learning Engineer outcomes you drove.

Research the employer's product and recent news before the interview.

Be ready to explain how you'd approach a typical Machine Learning Engineer problem end to end.

Have thoughtful questions ready about the team, tools and success metrics.

About root-access

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