Data annotation job
Machine Learning Engineer
DataAnnotation · Posted 1 week ago
- LLM training
- AI evaluation
- Coding
About this role
Overview
Models are surprisingly bad at reasoning about themselves: training dynamics, evaluation design, data pipelines, and deployment trade-offs. Plausible-sounding ML advice is often subtly wrong.
As a Machine Learning Engineer you'll stress-test how models reason about ML systems and write the answers a strong practitioner would give, shaping how the next generation handles your field.
What you’ll actually do
- Write prompts that probe how models reason about training, evaluation, debugging, and productionizing ML systems.
- Review AI output for subtle errors: leaky evaluations, wrong loss formulations, and misdiagnosed training failures.
- Write the correct solution when the model falls short, grounded in real practitioner experience.
Roles this fits
Common backgrounds: ML Engineer, MLOps Engineer, Applied Scientist.
What we look for
- Hands-on experience training, evaluating, or deploying models professionally or in serious personal work.
- Comfort with the modern ML stack; most tasks assume Python and PyTorch or JAX.
- Clear written English: your explanations are the training signal.
- No degree required. We care about what you can do, not where you learned it.
Compensation
$75 to $150+/hr depending on task difficulty and specialization. Many contributors add $10k to $100k+ a year; some make it their full-time income.
About DataAnnotation
DataAnnotation is where 100k+ experts train the world’s leading AI models. $150M+ paid to contributors to date, and the average contributor stays 5+ years. Flexible, remote, and always project-available.
Terms
- Engagement: Independent contractor
- Hours: Flexible hours
- Location: Remote
- Payouts: Weekly
This listing is aggregated by DataAnnotationJobs.org. Applications are processed by DataAnnotation, not by this site.
DataAnnotation hires remote contractors to train and evaluate AI models, from generalist review work to specialist tracks in coding, law, medicine, and finance. Its own site reports more than 100,000 contributors and over $150M paid out to date. See all DataAnnotation jobs.
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