via Lever · 15 settembre 2026 ·4 giorni fa

Team Lead, Human Data Operations - Post Training

jobgether
Romania Tempo pieno
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Accountabilities

  • Own end-to-end quality and delivery for assigned Human Data projects, personally reviewing domain-specific work and ensuring accuracy, consistency, guideline adherence, and high-quality data production at scale.

  • Lead, coach, and performance-manage a team of AI Tutors through regular reviews, documented feedback, action plans, shadow sessions, and continuous development.

  • Participate directly in labeling, annotation, and review activities to maintain quality standards and demonstrate best practices.

  • Establish and maintain rigorous guideline adherence, taxonomy management, and quality assurance processes.

  • Monitor team and project performance through KPIs such as quality scores, throughput, send-back rates, and other operational metrics.

  • Identify operational bottlenecks and implement process improvements to increase efficiency, quality, and scalability.

  • Create, maintain, and deliver training materials, practice exercises, and certification benchmark tasks.

  • Manage certification processes and make workforce adjustments based on performance, project needs, and operational requirements.

  • Collaborate with Human Data Managers, other Team Leads, and Engineering teams to translate model requirements into clear labeling strategies and operational guidelines.

  • Develop team capabilities while maintaining strong accountability and a high-performance culture, including supporting disciplinary processes when necessary.

  • Document project outcomes, identify opportunities for process iteration, and communicate project status, risks, and results to relevant stakeholders.

  • Represent the needs and perspectives of AI Tutors while fostering effective collaboration across the wider Human Data organization.

  • Balance strategic thinking with hands-on execution in a fast-moving environment where priorities may evolve quickly.

Requirements


  • At least 1 year of hands-on experience in data labeling, annotation, AI training or evaluation, content quality, or a similar operational environment.

  • Bachelor’s degree or at least 4 years of relevant professional experience in place of a degree.

  • Demonstrated understanding of data quality metrics, annotation processes, and guideline-driven workflows.

  • Basic understanding of artificial intelligence and machine learning concepts, particularly the relationship between training data quality and model performance.

  • Familiarity with project management and collaboration platforms such as Notion, Axiom, JIRA, Linear, or equivalent tools.

  • Previous experience leading or mentoring small teams in data labeling, annotation, content quality, or related operations is highly valued.

  • Strong domain expertise in at least one relevant field, such as design, psychology, philosophy, writing, or another humanities discipline, is preferred.

  • Proven ability to manage multiple concurrent projects and prioritize effectively in a fast-paced environment.

  • Strong experience reviewing domain-specific work, maintaining data quality, and improving operational processes.

  • Experience with coaching, performance management, training development, and certification programs is an advantage.

  • Strong analytical capabilities and the ability to use data and KPIs to identify trends and drive continuous improvement; SQL knowledge is a plus.

  • Experience managing distributed teams is desirable.

  • Excellent written and verbal communication skills, with the ability to build rapport, communicate clearly, and align diverse stakeholders.

  • Exceptional organizational skills and attention to detail.

  • Proactive and structured approach to problem-solving, with a strong focus on continuous improvement.

  • Ability to combine strategic thinking with hands-on execution.

  • Strong interest in developing high-performing teams and scaling reliable, high-quality Human Data operations.

  • Fluent English communication skills.

  • Ability to work effectively in a highly collaborative, flat, and fast-moving environment where initiative and ownership are expected.
Benefits:
  • Fully remote working opportunity, subject to applicable employment and location requirements.

  • Competitive compensation, with international salary details shared during the recruitment process.

  • Equity participation as part of the overall rewards package, where applicable.

  • Comprehensive medical, dental, and vision coverage for eligible employees, depending on location and employment type.

  • Access to retirement benefits such as a 401(k) plan for eligible U.S.-based positions.

  • Short- and long-term disability insurance and life insurance for eligible employees.

  • Paid sick leave and additional benefits depending on location and jurisdiction.

  • Various employee discounts, perks, and additional rewards.

  • Opportunity to work at the intersection of AI, human data, and advanced machine learning systems.

  • Direct impact on the quality of data used to train and evaluate next-generation AI models.

  • Opportunity to lead and develop a high-performing distributed team.

  • Hands-on exposure to complex AI training and evaluation operations.

  • Fast-paced environment with significant opportunities to contribute ideas, improve processes, and take ownership.

  • International and collaborative working environment.

Il mercato per questo tipo di ruolo

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