Sr. ML Ops Engineer

Corvus Robotics

$120K — $160K *
Information Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 2-3 years of experience in production ML infrastructure for large datasets
  • Proficient in building distributed data pipelines from multiple sources
  • Strong understanding of data flow from raw collection to trained models
  • Experience with systems development from the ground up or significant contributions in a small-team environment
  • Ability to excel in a high-ambiguity startup setting where self-direction is necessary

Responsibilities

  • Build and maintain data pipeline infrastructure consolidating various data sources
  • Create tooling for dataset selection and curation targeting specific data
  • Manage ML data infrastructure from robot to training run independently
  • Develop model evaluation and regression testing infrastructure based on real metrics
  • Automate model retuning processes to enable ML engineers to focus on key improvements

Benefits

  • Hybrid or remote working arrangements with travel to HQ in Mountain View, CA
  • Opportunity to work in a fast-paced startup environment
  • Be part of a team advancing drone technology and machine learning
  • Potential for significant professional growth and development
Full Job Description


About the Role

With a growing fleet of autonomous drones and an expanding customer base, we're now ready to multiply ML iteration speed and unblock more advanced ML product delivery.

We're hiring a systems-oriented Senior Software Engineer to build the data infrastructure, training pipelines, and internal tooling that our ML team needs to move faster.

Specifically in this role you will:
  • Build and maintain the data pipeline infrastructure that consolidates internal infra, labeling tools, S3, and other data sources into a unified, queryable system
  • Build tooling for dataset selection and curation that can programmatically target specific data (by environment, object type, etc.)
  • Own ML data infra from robot to training run, accessible to the ML team without backend engineering help
  • Build model evaluation and regression testing infrastructure -- real metrics, not vibes or "someone complained in prod"
  • Automate the model retuning loop for standard tasks so ML engineers can be mostly hands-off on routine updates


This is a hybrid or remote role with periodic trips to HQ in Mountain View, CA.

Must Haves
  • 2-3 years shipping real production ML infrastructure for big datasets, not just scripts
  • Experience building distributed data pipelines that consolidate multiple sources
  • Demonstrated understanding of data flow from raw collection, labeled training set, to trained models
  • Experience building systems from scratch, or contributed heavily to a small-team infra build where the playbook didn't exist
  • Ability to thrive in a startup environment with high ambiguity. You'll figure out what to build


Nice to Haves
  • Experience setting up annotation tooling and workflows
  • Background in robotics autonomy and computer vision

Experience integrating with tools like Kubeflow, SLURM, or similar for scalable training workflows

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