Machine Learning Engineer

Remote • Posted 2 hours ago • Updated 2 hours ago
Full Time
Occasional Travel Required
Remote
150000 - 300000/yr
Fitment

Dice Job Match Score™

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Job Details

Skills

  • Amazon Web Services
  • PyTorch
  • Machine Learning (ML)
  • Data Processing
  • Python

Summary

NOTE:

Due to government contract requirements, United States Citizenship is required for this position.

NO C2C or third parties please

This role can be remote in the US, but if in San Francisco, it is on site

 

Machine Learning Engineer
San Francisco, CA (SoMa) | Full-Time | Remote Considered

About the Opportunity

Our client is a mission-driven AI startup building next-generation forecasting infrastructure at the intersection of deep learning and geoscience. Their models run across a heterogeneous compute stack, public cloud, dedicated GPU clusters, edge-deployed hardware, and national supercomputing facilities, and their work directly supports federal defense and public safety missions. If you want your code to matter in the real world, this is worth a look.

What You''''''''ll Do

  • Architect, train, and iterate on deep learning models purpose-built for complex scientific domains
  • Push model performance forward through GPU optimization and distributed training strategies
  • Ingest, validate, and transform massive geospatial datasets into clean, analysis-ready form
  • Build and own scalable data pipelines that move high-volume scientific data reliably end to end
  • Partner closely with domain scientists to embed ML into advanced simulation workflows
  • Write production-grade code: tested, readable, and built to last
  • Debug hard problems across distributed systems when they arise, and figure out why they happened

What You Bring

  • 6+ years of software engineering experience, with meaningful time spent on ML systems
  • Python fluency is required; proficiency in C++, Java, or Rust is a strong plus
  • Real experience with PyTorch and a solid grasp of modern neural network architectures
  • Familiarity with scientific computing libraries (NumPy, SciPy) and time series methods
  • Hands-on work with geospatial data processing and big data pipelines
  • Cloud platform experience on AWS or Google Cloud Platform
  • Working knowledge of distributed computing, tensor operations, and GPU performance tuning
  • Full-stack exposure and comfort with databases are a plus

Who Thrives Here

This is an R&D-heavy environment with a lot of open questions and not a lot of playbooks. The engineers who do well here are self-directed, intellectually curious, and comfortable building in ambiguity. If you need a well-defined ticket queue to feel productive, this probably isn''''''''t the right fit. If you like hard problems and want room to actually own your work, keep reading.

Our client runs a small team, roughly five full-time engineers plus contractors, led by a hands-on CTO. Everyone works across the full customer portfolio. They move fast but take code quality seriously, and they believe the best time to iterate is when the system is working, not when it''''''''s on fire.

Employers have access to artificial intelligence language tools (“AI”) that help generate and enhance job descriptions and AI may have been used to create this description. The position description has been reviewed for accuracy and Dice believes it to correctly reflect the job opportunity.
  • Dice Id: dicects
  • Position Id: 3166
  • Posted 2 hours ago
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