Machine Learning Engineer
DataAnnotation · 100% remote · Contract · Posted
- Pay
- $40–150/hr
- Location
- Worldwide
- Languages
- English
- Hours
- Flexible hours
- Openings
- Not listed
- Level
- Experienced
Summary
Test AI reasoning about machine learning systems, identify training and evaluation errors, and write correct technical solutions.
What you'll do
- Write prompts about ML training, evaluation, debugging, and deployment
- Review AI output for evaluation leakage and incorrect loss formulations
- Identify errors in training failure diagnoses
- Write correct solutions based on practical experience
Requirements
- Hands-on experience training, evaluating, or deploying models professionally or in serious personal work
- Familiarity with the modern ML stack, including Python and PyTorch or JAX
- Clear written English
Skills
- Python
- PyTorch
- JAX
- Machine Learning
- Model Training
- Model Evaluation
- MLOps
Full description
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
Up to $40 – $150+/hr depending on task difficulty and specialization. Many contributors add $10k–$100k+ a year; some make it their full-time income.
Location: Remote. Hours: Flexible hours. Type: Independent contractor. Payouts: Weekly.
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