Role Overview
Voxel is hiring a Senior Software Engineer, ML Infrastructure. This is a full-time remote role, with the team based in San Francisco. Part of Voxel's Risk hiring. Full responsibilities, required qualifications, and the apply link are listed in the description below.
Salary Context
Salary is not disclosed in this posting. Market median for Senior-level Risk roles is $108k-$160k (based on 28 comparable listings). Many employers share specifics during the interview process or after an initial screen.
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Job description
WHO WE ARE
Voxel is building the future of Computer Vision and Machine Learning for operations, risk, and safety. We use computer vision and AI to enable existing security cameras to automatically detect hazards and high-risk activities, keep people safe and drive operational efficiencies. Our technology addresses the key cost drivers for workers’ compensation, general liability, and property damage, which cost US employers over $500 billion annually. Our customers include Fortune 500 companies across grocery, retail, manufacturing, food and beverage, logistics, and pharmaceutical distribution. We’ve passed $10M ARR with strong expansion revenue. Based in SF, backed by industry-leading VCs.
ABOUT THE ROLE
Voxel’s perception system is the technical core of everything we ship. Our models detect human activity, equipment interactions, environmental hazards, and operational state in real time across thousands of cameras in manufacturing, logistics, retail, and pharmaceutical environments. Safety was our wedge; it proved our platform works. Now customers are pulling us into operations: equipment utilization, workflow compliance, process efficiency. Every new use case runs through the perception team.
We're hiring a strong software engineer to own the ML Infrastructure that powers how Voxel trains and ships vision models. You’ll build systems that let our applied ML team train multiple models concurrently, manage experiments and ship optimized models to production. You'll set technical direction, write code, make architecture calls, and partner closely with applied CV, ML Data and Platform engineers.
WHAT YOU'LL DO
- Build and maintain training infrastructure that lets the applied ML team train multiple models concurrently, manage experiments, and iterate quickly on new architectures.
- Own the train-to-deploy handoff - export trained models to optimized inference formats (TensorRT, ONNX), quantify accuracy and latency impact, and partner with Platform on production deployment.
- Establish ML experiment tracking and lifecycle management - pick the right tools (Weights & Biases, MLflow, ClearML, or similar) so researchers can run, compare, and reproduce experiments efficiently.
- Establish DevOps-for-ML best practices on AWS (IaC, CI/CD, observability, cost monitoring) so researchers can iterate quickly and safely.
- Understand the infra needs of applied ML/CV engineers and design scalable solutions that support model development.
WHAT WE'RE LOOKING FOR
- 4+ years of experience building and shipping large scale software solutions.
- Hands-on experience building ML training pipelines in PyTorch.
- Hands-on experience with ML experiment tracking and lifecycle tools (Weights & Biases, MLflow, ClearML, or similar).
- Experience with AWS (S3, EC2, EKS, or similar) for ML workloads.
- Strong Python. Write performant code that scales well in production environments.
- Track record of owning infrastructure end-to-end: scoping, building, shipping, and improving systems that internal teams depend on.
- Bias toward shipping. You'd rather ship something good this week than something perfect next quarter.
- Strong communication skills.
NICE TO HAVE
- Experience with modern ML orchestration tools (Ray, Sematic, Flyte, Metaflow, Prefect, or similar)
- Familiarity with GPU performance profiling and optimization (Nsight, PyTorch profiler, or similar)
- Background in computer vision model training
COMPENSATION & BENEFITS
- Equity through Voxel’s Equity Incentive Plan
- Total compensation includes base salary, annual bonus, and equity
- Comprehensive health, dental, and vision insurance
- Competitive paid parental leave
- Unlimited PTO and flexible work arrangements
- Daily meals in-office, team events, annual company onsite
About Voxel
Frequently Asked Questions
How do I apply for the Senior Software Engineer, ML Infrastructure position at Voxel?
Use the Apply button above to submit your application directly to Voxel. Most applications take less than 5 minutes if your resume and contact details are ready, and you'll be routed to the employer's official application system to finish.
Is the Senior Software Engineer, ML Infrastructure role at Voxel remote?
Yes. This is a remote role. The team is based in San Francisco, but the position itself does not require relocating to that office.
What does a Senior Software Engineer, ML Infrastructure at Voxel earn?
Voxel has not disclosed a salary range in this posting. Many employers share specifics later in the interview process; you can also ask during a recruiter screen if compensation transparency is important to you.
When was the Senior Software Engineer, ML Infrastructure role at Voxel posted?
This role was posted on April 14, 2026 (86 days ago). It's still listed as actively hiring; we re-confirm openings against the source system multiple times per day and remove closed roles.
How much experience does the Senior Software Engineer, ML Infrastructure role at Voxel require?
This is a senior-level position. Most senior roles call for 5+ years of directly relevant experience. Voxel lists their specific requirements in the description below, so review the must-have qualifications closely before applying.
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