Founding ML Engineer, Computer Vision (Object Detection)

Clera

• $200K — $260K *
Consumer Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 5+ years of applied computer vision experience with production systems at scale.
  • Hands-on expertise in fine-grained or instance-level classification.
  • Proficient in PyTorch or TensorFlow, with experience in vision transformers or CNNs.
  • Skilled in designing evaluations that assess model performance beyond basic metrics.
  • Experience in managing model serving aspects like latency and reliability.
  • Ability to communicate technical concepts to both technical and non-technical audiences.
  • Familiarity with active learning and human-in-the-loop processes is a plus.

Responsibilities

  • Design computer vision architecture for fine-grained item identification.
  • Set accuracy standards and develop calibrated confidence scoring.
  • Create feedback loops to prioritize labeling based on model errors.
  • Balance tradeoffs between category coverage and accuracy improvements.
  • Oversee the transition from model development to production serving.
  • Communicate model capabilities and limitations to stakeholders.

Benefits

  • Comprehensive health insurance coverage.
  • Flexible work hours and remote work options.
  • Professional development opportunities.
  • Collaborative and innovative work environment.
Full Job Description
About the Role

As the founding machine learning engineer at an early-stage internet marketplace company, you will set the technical direction for visual item identification. You will build production models that distinguish between closely related items and provide reliable predictions that support customer decisions.
What You'll Do
  • Design computer vision architecture for fine-grained item identification, starting with foundation vision models and adapting them to the marketplace catalog.
  • Set category-specific accuracy standards and build calibrated confidence scoring so the product can communicate uncertainty.
  • Develop feedback loops that use model errors to prioritize future labeling in collaboration with the labeling team.
  • Guide tradeoffs between expanding category coverage and improving accuracy in existing categories.
  • Own the path from model development to production serving, balancing latency, cost, and reliability.
  • Explain model capabilities and limitations to technical and non-technical stakeholders.
What We're Looking For
  • At least 5 years of applied computer vision experience, including shipping a system to production at meaningful scale.
  • Hands-on experience with fine-grained or instance-level classification, where distinguishing similar items matters.
  • Strong fluency in PyTorch or TensorFlow and practical experience fine-tuning and deploying vision transformers or CNNs.
  • Experience designing and running vision model evaluations that measure improvement beyond loss metrics.
  • Experience owning model serving decisions, including latency, cost, reliability, and calibrated confidence scoring.
  • Comfort taking technical ownership of an open-ended problem and communicating tradeoffs clearly.
  • Experience with active learning, human-in-the-loop labeling, low-latency model APIs, or an early-stage startup is a plus.
Compensation & Benefits

Annual base salary: $200,000 to $260,000.
Location

On-site in San Francisco, California, United States.

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