Senior Software Engineer, ML Infrastructure

Voxel Labs, Inc

$130K — $180K *
Information Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's degree in Computer Science, Electrical Engineering, or related field.
  • 5+ years of experience in building and operating large-scale infrastructure, focusing 3+ years on ML/data-intensive systems.
  • Expertise in designing available distributed systems on Kubernetes.
  • Deep knowledge of orchestration tools like K8s operators and cluster-scale storage/compute technologies.
  • Experience in automating data-labeling workflows and maintaining dataset versioning.
  • Strong software engineering skills and familiarity with testing, observability, and secure coding practices.
  • DevOps mindset with experience in Infrastructure as Code (IaC), CI/CD, and metric alerting.

Responsibilities

  • Own and architect scalable data and labeling pipelines including quality-tiered datasets.
  • Build and optimize multi-GPU/multi-node training infrastructures, integrating necessary accelerators.
  • Manage the complete model lifecycle with model registries and zero-downtime rollbacks.
  • Offer technical leadership and mentorship to the infrastructure and research team.
  • Establish best practices for DevOps-for-ML to enhance researchers' productivity.
  • Collaborate with ML engineers to align infrastructure and research road-maps.

Benefits

  • Extensive health, dental, and vision insurance.
  • Competitive paid parental leave and support.
  • Equity Incentive Plan offering business ownership.
  • Generous paid time off and flexible work arrangements.
  • Daily meals at the office and vibrant company events.
  • 401K retirement plan and HSA options for health savings.
Full Job Description
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

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