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Computer Vision Engineer

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Overview

Schedule
Full-time
Career level
Senior-level
Remote
On-site

Job Description

We offer opportunities to do your life’s work while helping solve one of the most important technical and moral challenges of our time.

Full-time, in-office in Emeryville, California.

Our mosquito work

Turn raw assay video into precise, reviewable measurements of what mosquitoes do over time. The work begins with detection and tracking, but the scientific outcome is a trustworthy behavioral record that can train and evaluate models.

Key Responsibilities

• Develop and validate methods for detecting and tracking multiple mosquitoes in top-mounted behavioral-assay video

• Derive cumulative landing-zone occupancy, trajectories, spatial distribution, entry and exit rates, dwell time, and other interpretable behavioral features

• Build representative labeled datasets and error analyses across labs, cameras, lighting conditions, arenas, mosquito densities, and occlusion patterns

• Quantify confidence and route uncertain or anomalous results to efficient human review rather than silently producing a score

• Design visual overlays and quality-control tools that let scientists inspect how each measurement was produced

• Work with entomologists and lab teams to improve camera placement, assay geometry, capture standards, and the behavior labels that matter scientifically

Qualifications

• Strong experience with object detection, multi-object tracking, segmentation, pose or trajectory analysis, or related computer-vision methods

• Strong Python skills and experience with PyTorch, OpenCV, or equivalent tools

• Experience building evaluation sets and choosing metrics that reflect the downstream use of a vision system

• Ability to build efficient video-processing pipelines and debug failures at the frame and sequence level

• Clear communication with domain scientists and software engineers

Desired Attributes

• Experience with small-object tracking, animal behavior, microscopy, or other visually difficult scientific video

• Experience with domain adaptation, weak supervision, active learning, or human-in-the-loop annotation

• Familiarity with camera calibration, experimental instrumentation, or cross-site capture standardization

• Interest in making scientific measurements interpretable and auditable

Our crop-protection work

Turn raw assay video into precise, reviewable measurements of what insects do over time. The work begins with detection and tracking, but the scientific outcome is a trustworthy behavioral record that can train and evaluate models.

Key Responsibilities

• Develop and validate methods for detecting and tracking multiple insects in top-mounted behavioral-assay video

• Derive cumulative landing-zone occupancy, trajectories, spatial distribution, entry and exit rates, dwell time, and other interpretable behavioral features

• Build representative labeled datasets and error analyses across labs, cameras, lighting conditions, crop surfaces, insect densities, and occlusion patterns

• Quantify confidence and route uncertain or anomalous results to efficient human review rather than silently producing a score

• Design visual overlays and quality-control tools that let scientists inspect how each measurement was produced

• Work with entomologists and lab teams to improve camera placement, assay geometry, capture standards, and the behavior labels that matter scientifically

Qualifications

• Strong experience with object detection, multi-object tracking, segmentation, pose or trajectory analysis, or related computer-vision methods

• Strong Python skills and experience with PyTorch, OpenCV, or equivalent tools

• Experience building evaluation sets and choosing metrics that reflect the downstream use of a vision system

• Ability to build efficient video-processing pipelines and debug failures at the frame and sequence level

• Clear communication with domain scientists and software engineers

Desired Attributes

• Experience with small-object tracking, animal behavior, microscopy, or other visually difficult scientific video

• Experience with domain adaptation, weak supervision, active learning, or human-in-the-loop annotation

• Familiarity with camera calibration, experimental instrumentation, or cross-site capture standardization

• Interest in making scientific measurements interpretable and auditable

To learn more, visit monarchlabs.org

Automate your job search with Sonara.

Submit 10x as many applications with less effort than one manual application.

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FAQs About Computer Vision Engineer Jobs at Monarch

What is the work location for this position at Monarch?
This job at Monarch is located in Emeryville, California, according to the details provided by the employer. Some roles may also include multiple work locations depending on the requirement.
What pay range can candidates expect for this role at Monarch?
Employer has not shared pay details for this role.
What employment applies to this position at Monarch?
Monarch lists this role as a Full-time position.
What experience level is required for this role at Monarch?
Monarch is looking for a candidate with "Senior-level" experience level.
What is the process to apply for this position at Monarch?
You can apply for this role at Monarch either through Sonara's automated application system, which helps you submit applications 10X faster with minimal effort, or by applying manually using the direct link on the job page.