Materials Science AI Evaluator

AI Trainer Jobs

United States

Remote

USD 55,000 - 96,000

Part time

4 days ago
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Job summary

AI Trainer Jobs is seeking a remote Materials Science AI Evaluator contractor to review AI outputs, reproduce key steps, and document methods for training data pipelines.

You will apply scientific and technical expertise to verify derivations, flag errors, and provide corrected reasoning to help the modeling team improve AI performance across materials science workflows.

Qualifications

  • Graduate-level training or equivalent applied experience in materials science or a closely related field.
  • Hands-on experience publishing, teaching, or advising on the topic at a professional level.
  • Clear written reasoning citing methods, papers, or worked examples.
  • Reliable async availability for at least 10 hours per week.

Responsibilities

  • Review AI outputs against current materials science methods, conventions, and prior work for assignments.
  • Reproduce or sanity-check key derivations, calculations, or experimental claims.
  • Flag dimensional, methodological, and citation errors with structured severity tags.
  • Capture corrected reasoning or worked examples so the modeling team can train on it.

Skills

Scientific reasoning
Method validation
Citation review
Quantitative analysis
Materials science
AI evaluation
Rubric writing
Expert review
Multilingual fluency

Education

PhD or equivalent

Job description

About the role

Materials Science AI Evaluator is a remote review track for evaluating AI outputs across materials science reasoning, calculations, and research workflows. Reviewers grade derivations and assumptions, reproduce key results, and document the correct method so the modeling team can train on it.
Materials science models live or die on whether their derivations actually hold up under scrutiny. AuraOne uses scientific specialists to grade outputs the way a peer reviewer would — checking assumptions, reproducing key steps, and capturing the right method alongside the wrong one.
Bring scientific and technical domain expertise into AI reasoning, research, and dataset review.

Responsibilities
  • Review AI outputs against current materials science methods, conventions, and prior work for Materials Science AI Evaluator assignments.
  • Reproduce or sanity-check key derivations, calculations, or experimental claims.
  • Flag dimensional, methodological, and citation errors with structured severity tags.
  • Capture the corrected reasoning or worked example so the modeling team can train on it.

Role details

Track STEM research review Work model Remote · Independent specialist contractor Compensation Hourly rate confirmed after the interview process. Eligible from US

What you should bring

  • Graduate-level training or equivalent applied experience in materials science or a closely related field for Materials Science AI Evaluator work.
  • Hands-on experience publishing, teaching, or advising on the topic at a professional level.
  • Comfort applying multi-page rubrics consistently across long batches.
  • Clear written reasoning that cites methods, papers, or worked examples.
  • Reliable async availability for at least 10 hours per week.

Role signals

Example tasks

  • Reproduce a materials science derivation from a model output and flag any algebraic or dimensional errors.
  • Grade a model's literature summary against the cited papers and rate the citation quality.
  • Adjudicate a disputed answer between two reviewers using textbook methods.
  • Audit a 25-row batch for rubric consistency and report drift to the program lead.

Useful experience

  • PhD, postdoc, or industry research experience in the topic area.
  • Prior work reviewing AI-assisted research tooling and its failure modes.
  • Multilingual fluency for non-English papers and corpora.

Compensation and schedule

Hourly rate confirmed after the interview process.
Expected arrangement: contractor , with program-defined task volume and review pacing. Placement depends on current program demand and reviewer confirmation.

Skills used in matching

  • Scientific reasoning
  • Method validation
  • Citation review
  • Quantitative analysis
  • Materials science
  • Science and advanced mathematics
  • AI evaluation
  • Rubric writing
  • Expert review

Application boundary

Creating a specialist profile records your experience and preferences. Starting role intake is a separate action that attaches this role to your candidate record.

Specialist intake

The intake preserves your chosen role, the visible terms, and source attribution for reviewer context.

  • 01 Confirm profile and eligibility details.
  • 02 Attach this role deliberately.
  • 03 Receive a human review decision or follow-up.
    Placement timing depends on program demand and reviewer confirmation.
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