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Manager, Operations (Machine Learning, Autonomous Vehicles & ADAS)

External
Digitaldividedata logoDigitaldividedata · Nairobi, Kenya
ContractOn-site1mo ago
Capacity PlanningExcelLeadershipMachine LearningRisk Management
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Requirements

  • Education & Experience
  • Bachelor's degree in Data/AI, Computer Science, Engineering, Information Systems, or related fields.
  • A minimum of 2.5 years of experience in AI/ML operations, project management, or technical workflow coordination.
  • Hands-on exposure to annotation workflows: 2D/3D CV, LiDAR, ADAS, or AV datasets.
  • Strong track record managing projects in KPI-driven environments.
  • Must have worked in a BPO
  • Familiarity with annotation tools such as CVAT, SuperAnnotate, and Labelbox.
  • Understanding of ML metrics, data quality principles, and AV/ADAS ecosystems.

Additional Information

Lead the Future of AI, Autonomous Systems, and High-Performance Data Delivery Digital Divide Data (DDD) is a global leader in powering Machine Learning and Autonomous Systems with high-quality, large-scale data. We are seeking an Operations Manager (ML, AV & ADAS) who will own delivery excellence, elevate operational performance, and drive client success across cutting-edge AI programs. If you excel at orchestrating teams, managing complex workflows, solving operational challenges, and communicating confidently with clients, this role is your runway to impact the future of autonomous intelligence. Your Mission - What You'll Lead Client Relationship & Communication Excellence Build trusted relationships with ML, AV, and ADAS clients to ensure seamless service delivery. Understand and articulate project scope, deliverables, timelines, and ownership. Serve as the primary liaison for all client requests, updates, and issue resolution. Track, manage, and close client requests with clarity, urgency, and professionalism. Ensure workflows and outputs fully align with client expectations and technical guidelines. Operational Delivery Ownership Oversee day-to-day execution of annotation, QA, audits, and reporting activities. Translate technical guidelines into clear, actionable workflows for delivery teams. Monitor team adherence to SLAs/KPIs: accuracy, throughput, productivity, and latency. Lead real-time issue resolution and ensure teams maintain context and operational readiness. Maintain strict version control of instructions, guidelines, and workflow updates. Performance Tracking & Continuous Improvement Track performance trends across ML/AV/ADAS datasets using scorecards and dashboards. Diagnose quality or productivity gaps and implement root-cause fixes. Partner with QA and Training teams to refine workflows, conduct refreshers, and clarify instructions. Lead performance reporting to clients, highlighting insights, actions, and operational improvements. Team Leadership & Talent Development Mentor and develop teams handling AI, CV, 3D, or LiDAR datasets. Build a culture of feedback, technical excellence, and continuous learning. Support team decision-making on ambiguous, complex, or escalated annotation scenarios. Advise on capacity planning, calibration cycles, and training needs. Risk Management & Issue Mitigation Identify risks related to workflow complexity, guideline ambiguity, tooling inefficiencies, or data quality concerns. Develop mitigation strategies to ensure delivery continuity and client satisfaction. Support Business Continuity Plans (BCP) and drive readiness for activation. Escalate advanced risks to senior leaders and product teams for resolution.


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