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Remote ML Technical Quality Assurance Lead - AI Trainer
Remote / Online - Candidates ideally in
Powell River, BC, Canada
Listed on 2026-01-01
Powell River, BC, Canada
Listing for:
SuperAnnotate
Contract, Remote/Work from Home
position Listed on 2026-01-01
Job specializations:
-
IT/Tech
Machine Learning/ ML Engineer, Data Scientist
Job Description & How to Apply Below
You will play a crucial role in guaranteeing the technical quality and consistency of ML-related training data, code, and evaluations, ultimately contributing to the success of our projects.
Key Responsibilities:
• Technical quality review:
Review Python/ML tasks and code submissions (scripts, notebooks, experiments) for correctness, clarity, model design, and alignment with project guidelines; provide clear and constructive feedback and escalate critical issues when needed.
• Communication:
Keep trainers and QAs updated on Discord about new items, ML-related clarifications, or project changes, and respond to their technical and process questions in a timely and professional manner.
• Activation management:
Monitor trainer/QA activity and proactively communicate with inactive contributors to understand blockers and encourage re-engagement.
• Documentation:
Create, maintain, and improve technical documentation such as ML coding guidelines, experiment checklists, best-practice examples, trackers, FAQs, honeypots, and related documents.
• Onboarding & training:
Schedule, organize, and run onboarding and training calls with trainers/QAs to walk them through ML quality standards, common issues, and review expectations.
Your Profile:
• Academic / professional background:
Bachelor’s or Master’s degree in Computer Science, Machine Learning, Data Science, Statistics, or a related field
• Python & ML experience:
Solid professional experience with Python for machine learning, including end-to-end workflows (data preparation, model training, evaluation, and deployment or experimentation).
• ML stack:
Strong hands-on experience with Num Py, pandas, scikit-learn, and at least one deep learning framework such as PyTorch or Tensor Flow.
• Analytical & problem-solving skills:
Exceptional ability to understand and evaluate ML code, experiments, and metrics, quickly identify issues, and propose clear improvements.
• Written communication:
Excellent written communication skills in English, able to explain technical feedback, reasoning, and recommendations clearly to a distributed team.
• Managing ambiguity:
Comfortable working with incomplete or evolving ML specifications and able to clarify complex technical requirements effectively.
• Leadership mindset:
Comfortable working independently, giving feedback, and keeping the trainer/QA community engaged, aligned with standards, and supported.
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