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Video Annotation Specialist
Job in
Charlotte, Mecklenburg County, North Carolina, 28245, USA
Listed on 2026-10-09
Listing for:
AI Trainer Jobs
Part Time
position Listed on 2026-10-09
Job specializations:
-
IT/Tech
AI Evaluation, Data Annotation/ AI Labeling
Job Description & How to Apply Below
Video Annotation Specialist is a remote evaluation track for reviewing video annotation evaluation prompts and responses against Aura One's quality rubric. Reviewers compare paired outputs, label edge cases, and write the kind of structured feedback the modeling team can use to retrain.
AI data reviewers help turn video annotation evaluation outputs into auditable labels, rationales, and regression cases for Aura One Human Data.
Review image and video output. Judge spatial reasoning and scene understanding.
- Evaluate video annotation evaluation model outputs against a versioned rubric and assign severity tags for Video Annotation Specialist assignments.
- Compare paired responses and pick the stronger answer with a written rationale.
- Label hallucinations, instruction-following failures, and unsafe content with structured tags.
- Capture ambiguous prompts and route them back to the program team for rubric updates.
- Maintain reviewer-quality scores by calibrating against gold-standard examples each week.
Track Evaluation & annotation Work model Remote Independent specialist contractor Compensation Hourly rate confirmed after the interview process. Eligible from US
- Prior evaluation, annotation, or human-rater experience on video annotation evaluation or adjacent content for Video Annotation Specialist work.
- Comfort applying multi-page rubrics consistently across long batches.
- Clear written reasoning that names the issue and the rubric clause being applied.
- Strong attention to detail and the ability to flag when a prompt itself is the problem.
- Reliable async availability for at least 10 hours per week.
- Compare two video annotation evaluation model responses to the same prompt and pick the stronger one with rationale.
- Tag an unsafe response with the correct policy category and severity.
- Audit a 50-row batch for rubric consistency and report drift to the program lead.
- Propose a rubric clarification after spotting a recurring failure mode.
- Background in linguistics, content moderation, or trust & safety review.
- Experience with inter-rater agreement metrics and calibration cycles.
- Domain expertise that lets you spot subject-matter errors automated checks miss.
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.
- Model output evaluation
- Rubric-based annotation
- Severity tagging
- Inter-rater calibration
- Video Annotation evaluation
- Design
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