Strategic Project Lead, Software Engineering
Turing New York, New York, United States; San Francisco, California, United States; Seattle, Washington, United StatesUSD 120,000–200,000 / yearSenior
Key requirements
- Agile
- Consulting
About Turing
Turing’s mission is to accelerate superintelligence to drive real economic progress. Headquartered in San Francisco, Turing works with frontier AI labs to generate high-quality datasets, reinforcement learning environments, and frontier research benchmarks that improve model capabilities in software engineering, enterprise knowledge work, and advanced STEM reasoning. In software engineering, Turing is the largest and longest-running data provider in the category. Turing also works with Fortune 500 enterprises across financial services, life sciences, healthcare, retail, automotive, and CPG to build and deploy end-to-end agentic AI systems inside mission-critical workflows. By operating on both sides, Turing closes the loop between frontier research and enterprise deployment, turning real-world deployment signals into better data, evaluations, and more capable models. Learn more at www.turing.com .
The Role
You will own the production system behind Turing’s software-engineering data programs, turning complex research requirements into predictable delivery across quality, throughput, contributor performance, timelines, and cost.
These programs may involve supervised coding demonstrations, repository-level tasks, agentic trajectories, reinforcement-learning environments, benchmarks, code review, and rubric-based evaluations. They can require coordinating hundreds of distributed software engineers while responding quickly to changing research requirements.
This is an operations leadership role with a meaningful technical bar. You must be able to inspect code, understand tests, interrogate quality signals, and challenge a workflow or rubric when it is not producing the intended result. You will not be expected to act as the principal engineer for every program. Your primary responsibility is to build and operate the system that consistently produces high-quality technical work at scale.
What You’ll Do
1) Operational execution — own end-to-end delivery on every project you run
Design and manage data pipelines from customer specification to final delivery, with full accountability for scope, timeline, and quality.
Diagnose bottlenecks in real time — re-sequence workflows, refine instructions, create incentive systems, and scale review processes to hit throughput targets.
Run daily “war room” syncs to stay ahead of issues before they reach the customer.
2) Customer relationships — be the face of Turing to the world’s leading AI labs
Act as the primary point of contact for researchers and program managers at frontier AI labs.
Deliver clear, consistent reporting and proactively anticipate client needs before they ask.
Build the kind of long-term trust that converts a one-off project into a multi-year partnership — and identify expansion opportunities along the way.
3) Large-scale coordination — orchestrate the work of 100–1,000+ contributors
Source, vet, onboard, train, and performance-manage domain experts across distributed workspaces.
Maintain high execution standards at every stage of production, from annotation through review through delivery.
Design motivation and performance systems — including gamification — that keep large contributor pools engaged and output high.
4) Quality ownership — ensure world-class data integrity on every project
Own quality control across the annotation lifecycle: set the bar, measure against it, and close the gap when it slips.
Analyze datasets to identify trends, anomalies, and systematic errors — then fix the root cause, not just the symptom.
Implement and continuously improve annotation, evaluation, and curation best practices.
5) Process innovation — make the operation faster, better, and cheaper each cycle
Stay ahead of emerging practices in AI data operations and apply them before customers ask.
Champion workflow changes that reduce task completion times and improve cost efficiency.
Maintain clear, sca
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