Project Cursa - Robot Manipulation Video Annotation QC

Reposted 9 Days Ago
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Hiring Remotely in Philippines
Remote
Entry level
Artificial Intelligence • Machine Learning • Natural Language Processing • Professional Services
The Role
Reviews robot manipulation video annotations for accuracy, completeness, consistency, and adherence to style guidelines. The role compares descriptions across multiple camera views, verifies actions and outcomes, identifies labeling errors, provides constructive annotator feedback, tracks recurring issues, and participates in calibration sessions. Strong written English, spatial reasoning, attention to detail, and independent work habits are required. Experience with video annotation, transcription QA, robotics terminology, or Label Studio is preferred.
Summary Generated by Built In

About the Role 

We are looking for a detail-oriented QC Reviewer to ensure the quality and consistency of robot manipulation video annotations produced by our annotation team. You'll review labeled video segments against a detailed style guide and reference examples, catch errors or inconsistencies, and provide clear, constructive feedback to annotators. This role is critical to maintaining the accuracy and reliability of training data used for robotics AI models. 

What You'll Do 

  • Review completed annotations of robot manipulation videos across three levels of labeling detail (atomic motion, skill/subtask, task/goal). 

  • Cross-check annotator descriptions against all three camera views (overhead and both wrist-mounted cameras) to verify accuracy of described actions, object identification, and contact/grasp details. 

  • Verify full coverage of each video — confirm there are no gaps in labeling, including idle or pause moments. 

  • Check that descriptions accurately reflect what actually happened in the video, including failures, drops, or slipped grips — flagging any instances where outcomes were inaccurately described or "smoothed over." 

  • Evaluate annotations for adherence to the style guide: correct vocabulary usage, spatial/directional accuracy, consistent terminology for objects and actions, and appropriate language variation (avoiding repetitive phrasing). 

  • Identify recurring errors or patterns of confusion among annotators and report them to the team lead for calibration purposes. 

  • Provide specific, actionable feedback on rejected or revised annotations, referencing the style guide and reference examples. 

  • Participate in periodic calibration sessions with the team and client to align QC standards with evolving guidelines or edge-case resolutions. 

  • Maintain a QC log or tracking sheet documenting review outcomes, common error types, and annotator performance trends (as required by the project). 

 

What We're Looking For 

Required: 

  • Excellent written English and strong reading comprehension — you'll be evaluating precise, nuanced language choices, not just checking for typos. 

  • Exceptional attention to detail — able to catch subtle mismatches between video content and written description (e.g., a mislabeled grasp type, an incorrect object part, a missed failure event). 

  • Strong grasp of spatial/mechanical description (left/right, above/below, object parts like handles, lids, edges) to verify annotator accuracy. 

  • Ability to apply a detailed, structured style guide consistently and make sound judgment calls in ambiguous or edge-case scenarios. 

  • Comfort giving clear, specific, and constructive feedback to annotators (written feedback, not just pass/fail marks). 

  • Reliable, self-directed work habits, with the ability to work independently while meeting review turnaround expectations. 

Nice to Have: 

  • Prior experience in a QC, editing, proofreading, or annotation review role. 

  • Experience with video annotation, data labeling, or transcription QA specifically. 

  • Familiarity with robotics terminology (grippers, end-effectors, manipulation). 

  • Experience with annotation tools such as Label Studio, including review/approval workflows. 

Why Join Welo Data?  
✨ Limitless Flexibility  
Project-based opportunities that fit your availability. Choose when and how much you want to contribute—fully remote, with complete autonomy.   
🌱 Limitless Growth  
Optional access to AI and Large Language Model workshops designed specifically for professionals like you. No coding required—just your expertise.   
🌍 Limitless Support  
Be part of a global contributor community with responsive guidance and support.   
💡 Real Impact  
Apply your expertise in the Legal field to influence the AI systems shaping the future of your industry—while collaborating with data professionals and expanding your skills.  
 
How to Apply? 
Apply now by answering a few quick questions to join our database and become part of our growing community. 
 
About Welo Data 
Welo Data, part of Welocalize, is a global AI data company with 500,000+ contributors delivering high-quality, ethical data to train the world’s most advanced AI systems. We’re building smarter, more human AI with a diverse community in 100+ countries.  
At Welo Data, Limitless AI. Limitless You. isn’t just a slogan—it’s our promise. We build smarter AI through the power of human contribution, offering limitless opportunities for our global community to grow, contribute, and work on their terms. 

Skills Required

  • Excellent written English and strong reading comprehension
  • Exceptional attention to detail
  • Strong grasp of spatial and mechanical descriptions
  • Ability to consistently apply a detailed style guide and make sound judgments in ambiguous scenarios
  • Ability to provide clear, specific, and constructive written feedback
  • Reliable, self-directed work habits and ability to work independently while meeting review turnaround expectations
  • Prior experience in QC, editing, proofreading, or annotation review
  • Experience with video annotation, data labeling, or transcription quality assurance
  • Familiarity with robotics terminology, including grippers, end-effectors, and manipulation
  • Experience with annotation tools such as Label Studio and review or approval workflows
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The Company
6,543 Employees

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