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Ml Computer Vision Engineer Jobs (NOW HIRING)

About the Role We're hiring a Computer Vision Engineer to work on the CV technology behind Mill ... Optimize edge models for production performance, and operationalize and scale the ML pipeline with ...

About the Role We're hiring a Computer Vision Engineer to work on the CV technology behind Mill ... Optimize edge models for production performance, and operationalize and scale the ML pipeline with ...

Computer Vision Engineer

Chicago, IL · On-site

$115K - $135K/yr

They are seeking a Computer Vision Engineer to develop and implement innovative computer vision solutions for sports video data and collaborate with various teams to enhance their systems.

Computer Vision Engineer

Sterling, VA · On-site

$110K - $130K/yr

As a Computer Vision Engineer, you will: * Drive the architecture, development, and deployment of advanced 2D and 3D computer vision systems that enable Molg's robotic microfactories. * Own the full ...

Job Summary The Staff Computer Vision AI/ML Engineer leads the research, development, optimization, and deployment of AI/ML-based computer vision solutions for remote sensing applications. The role ...

$125 - $150/hr

C++, Computer Vision, PyTorch, Tensor Country: United States Role Summary We are seeking a highly skilled Computer Vision Engineer to design, develop, and deploy real-time defect detection systems ...

Computer Vision Engineer

Sterling, VA

$110K - $130K/yr

As a Computer Vision Engineer, you will be responsible for: * Continuous design, development, testing, and deployment of 2D and 3D vision capabilities incorporated into the Molg Microfactories.

About the Role We're hiring a Computer Vision Engineer to work on the CV technology behind Mill ... Fluency with modern ML approaches -- VLMs, LLMs, foundation models, and agentic systems ...

Trusted Space is seeking a Senior Computer Vision Engineer with a bachelor's degree or higher and ... ML frameworks like PyTorch, TensorFlow, and scikit-learn • Strong foundation in mathematics ...

About the Role We're hiring a Computer Vision Engineer to work on the CV technology behind Mill ... Optimize edge models for production performance, and operationalize and scale the ML pipeline with ...

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Ml Computer Vision Engineer information

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$48.5K

$121.5K

$137.5K

How much do ml computer vision engineer jobs pay per year?

As of Sep 8, 2026, the average yearly pay for ml computer vision engineer in the United States is $121,515.00, according to ZipRecruiter salary data. Most workers in this role earn between $111,500.00 and $131,500.00 per year, depending on experience, location, and employer.

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Infographic showing various Ml Computer Vision Engineer job openings in the United States as of September 2026, with employment types broken down into 1% As Needed, 77% Full Time, 16% Part Time, and 6% Contract. Highlights an 94% Physical, 1% Hybrid, and 5% Remote job distribution, with an average salary of $121,515 per year, or $58.4 per hour.

Computer Vision Engineer

San Bruno, CA

Mill
1 - 10 employees

$250K/yr

Full-time

Posted 27 days ago


Job description

About the Role

We're hiring a Computer Vision Engineer to work on the CV technology behind Mill Commercial - the computer vision and agentic systems that turn a stream of food waste into operational intelligence for commercial kitchens. Mill Commercial integrates a camera into our high-capacity food recycler; models identify and quantify food scraps, and our pipeline turns that signal into procurement and operational guidance for large food service operators.

You'll join a small, capable team, owning the modeling and training infrastructure that powers our CV technology. You will design the cloud-side evaluation harness to determine if edge models meet production targets and build the ground-truth workflows to support them. This is a hands-on IC role for someone who brings deep computer vision fundamentals to fine-tuning models, building MLOps pipelines, and establishing a methodical approach to managing system complexity.

What You'll Do
  • Train and evaluate segmentation, classification, and mass-estimation models for the Mill Commercial camera pipeline - from prompting foundation models to fine-tuning ConvNets and VLMs.
  • Optimize edge models for production performance, and operationalize and scale the ML pipeline with model lineage tracking end to end.
  • Create and curate datasets per customer/vertical - more customized, purpose-driven data - to support accuracy targets across food types, kitchen environments, and deployment configurations.
  • Analyze failure cases systematically - unfamiliar food classes, novel kitchen environments, challenging lighting and clutter conditions - and drive the data and modeling decisions that close accuracy gaps.
  • Build annotation tooling and ground-truth generation workflows, including foundation-model-assisted labeling, to keep pace with model iteration.
  • Bring a methodical approach and strong opinions, backed by experience, to the modeling and evaluation decisions you own - and partner with the team's MLOps and edge engineers on training practices, versioning, and deployment tradeoffs as they come up.
What We're Looking For
  • Strong fundamentals in computer vision and deep learning - segmentation, detection, classification, tracking - deep enough to make informed architecture calls.
  • Fluency with modern ML approaches - VLMs, LLMs, foundation models, and agentic systems - alongside classical deep learning. You know when to fine-tune a ConvNet, when to prompt a VLM, and when to wire up an agent, and you understand the practical realities of putting any of them into a product.
  • Experience evaluating ML models rigorously - designing metrics, building eval harnesses, and using results to drive product decisions rather than just publish a number.
  • Product shipping experience - you've taken a model to production and dealt with what comes after (drift, edge cases, latency budgets), not just to a benchmark.
  • Bias for action - you'd rather ship a good-enough experiment and learn from it than wait for the perfect plan.
  • Experience making build-vs-buy or tooling decisions backed by data or a clear rubric, not just instinct - you can show your work on how you got there.
  • Clear, direct communication - you can explain tradeoffs to non-technical stakeholders, push back honestly when you disagree, and write docs that others can follow.
  • Genuine interest in applying AI to food waste reduction and sustainability. This is a mission-driven product and we want people who care about the mission.
  • Software skills: Python, PyTorch, OpenCV. Experience with LLM and agent frameworks.
Nice to Have
  • Experience with video understanding (temporal consistency, tracking, video segmentation)
  • Experience with MLOps tooling (Weights & Biases, MLflow, SageMaker, ClearML, or equivalents)
  • Hardware / IoT product experience, particularly with computer vision and cameras for embedded systems

The estimated base salary range for this position is $220-250K, which does not include the value of benefits or a potential equity grant. A wide range of factors are considered in making compensation decisions, including but not limited to skill sets, market conditions, experience and training, licensure and certifications, and business and organizational needs. At Mill, it is not typical for an individual to be hired at or near the top of the range for their role.