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Machine Learning Engineer – Computer Vision
CompanyCam. Design, train, and deploy computer vision models to production with well-understood performance, latency, and cost characteristics.
Posted 4/27/2026full-timeRemote • 🇺🇸 United StatesMid-LevelSenior💰 $220,000 - $250,000 per yearWebsite
Tech Stack
Tools & technologiesPythonPyTorchSQLTensorflow
About the role
Key responsibilities & impact- Design, train, and deploy computer vision models to production with well-understood performance, latency, and cost characteristics.
- Own the full ML pipeline: data preprocessing, feature engineering, model selection, training, evaluation, and deployment into sustainable inference services.
- Conduct discovery spikes to validate feasibility and inform go/no-go decisions before committing to full development.
- Integrate ML solutions with observability tooling, establishing and maintaining benchmarks to measure improvement and compare approaches.
- Build automated, self-sustaining ML pipelines. Models should train, evaluate, and deploy with minimal manual intervention.
- Inform build-vs-buy decisions with both technical rigor and business context, understanding when in-house models create competitive advantage vs. when vendor APIs are sufficient.
- Collaborate with software engineers, data engineers, and product stakeholders to integrate ML solutions into CompanyCam's platform.
- Communicate clearly with non-technical audiences about feasibility, requirements, and trade-offs of proposed solutions.
Requirements
What you’ll need- 3+ years of experience shipping machine learning models to production (not just training them)
- Experience with computer vision techniques including image classification, segmentation, and object detection
- Strong coding skills in Python with proficiency in PyTorch or TensorFlow and comfort with modern architectures (transformers, CNNs, etc.)
- Strong SQL skills including joins, subqueries, window functions, and CTEs
- Proficiency in data analysis, cleaning, transformation, and feature engineering
- Experience with version control (Git), experiment tracking, and ML development best practices
- Ability to explain technical concepts to non-technical stakeholders through clear writing and presentations
- You live and work permanently in the U.S. (We're not set up to hire outside the U.S.)
Benefits
Comp & perks- meaningful equity
- and other benefits
ATS Keywords
✓ Tailor your resumeApplicant Tracking System Keywords
Tip: use these terms in your resume and cover letter to boost ATS matches.
Hard Skills & Tools
machine learningcomputer visionimage classificationsegmentationobject detectionPythonPyTorchTensorFlowSQLdata analysis
Soft Skills
communicationcollaborationtechnical writingpresentation skills