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DD
 Responsibilities
digital divide data · Nairobi, Nairobi County, Kenya
About The Role
Role Overview
The Associate is responsible for executing 2D and 3D LiDAR annotation and segmentation tasks in accordance with defined SOPs, quality benchmarks, and productivity targets. This role requires technical precision, spatial awareness, and disciplined execution in high-volume production environments.
 Responsibilities
Production & Quality Execution
- Execute repetitive 2D/3D LiDAR annotation and segmentation tasks in strict adherence to SOPs
- Maintain classification accuracy across object types and categories
- Meet or exceed defined benchmarks for:
- Productivity
- Quality
- Accuracy
- Sustain consistency in output with minimal supervision
Issue Identification & Continuous Improvement
- Identify recurring annotation errors or tool-related issues
- Escalate quality risks or inconsistencies in labeling standards
- Suggest improvements to tools, taxonomy, or workflow
Communication & Collaboration
- Communicate effectively with peers, QA teams, and stakeholders in English
- Document issues clearly and accurately
Success Profile
- High attention to detail
- Strong spatial and logical reasoning ability
- Ability to sustain accuracy in repetitive workflows
- Foundational understanding of quality control
- Ability to identify misclassification and segmentation inconsistencies
Education Requirements
- Diploma or higher qualification in a relevant field such as:
- Computer Science
- Information Technology
- Engineering (Electrical, Computer, Geospatial, or related)
- Data Science
- Geospatial Studies
- Or equivalent technical discipline
Technical Competencies
LiDAR & Segmentation Skills
- Working knowledge of 2D LiDAR annotation
- Working knowledge of 3D point cloud annotation
- Systems & Communication
- Proficient working knowledge of a computer/laptop
- Strong English reading comprehension
- Ability to write clear and accurate English
- Ability to interpret and execute complex SOP documentation
-  
- Ability to perform basic object segmentation and classification
- Understanding of bounding boxes, cuboids, and object tagging principles
- Ability to follow annotation taxonomies and ontology guidelines accurately
- Familiarity with annotation tools such as CVAT, SuperAnnotate, and Labelbox.
- Understanding of ML metrics, data quality principles, and AV/ADAS ecosystems.
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