Senior Research Engineer, Enterprise Knowledge
Turing · New York, New York, United States; Palo Alto, California, United States; San Francisco, California, United States; Seattle, Washington, United States
- Senior
- Full-time
- $250,000 – $350,000
- Posted 2026-09-24
- Confirmed live on 25 September 2026
Job description
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
Turing builds large-scale datasets and reinforcement learning (RL) environments that power post-training for the world’s leading AI labs and enterprises. We create RL environments to evaluate and improve our customers' models on complex, long-range, multi-step workflows across high-GDP-value domains such as Finance, Sales, Retail, Developer Tools, Collaboration, Customer Experience.
The environments vary depending on the model capability being evaluated / improved, a few examples of environment types are listed here:
• Environments for Software Engineering / coding agents
• UI-Environments for Computer-Use/Browser-Use agents
• MCP-based Environments for general function-calling agents across various enterprise and consumer applications
We are seeking Senior Research Engineers to advance our understanding of frontier AI systems and develop practical innovations in data, algorithms, evaluation, and training.
You will work at the intersection of research and engineering, investigating high-impact questions that improve real-world AI systems. You will design and run rigorous experiments, develop research-grade prototypes and tooling, and collaborate with Research, Engineering, Product, and Operations teams to translate promising ideas into scalable applications.
This role offers the opportunity to contribute to both foundational research and applied AI development across synthetic and agentic data generation, reinforcement learning, post-training, model understanding, benchmarks, and evaluation.
What You’ll Do
1. Conduct Research on Frontier AI Systems
• Investigate the capabilities, limitations, and training methods of frontier AI systems.
• Formulate research questions that can inform Turing’s products, platforms, and technical strategy.
• Explore new approaches to synthetic and agentic data generation, reinforcement learning, post-training, model understanding, benchmarks, and evaluation.
• Stay current with advances in machine learning and identify opportunities for meaningful technical contribution.
2. Build and Evaluate Research Systems
• Develop research-grade datasets, experiments, prototypes, tooling, and evaluation frameworks.
• Train, test, and evaluate models using modern AI and machine learning tools.
• Analyze results carefully and draw clear, evidence-based conclusions.
• Establish sound practices for experimental rigor, data quality, reproducibility, and interpretation.
• Iterate quickly from early hypothesis through validated technical insight.
3. Translate Research into Practical Impact
• Collaborate closely with Research, Engineering, Product, and Operations teams.
• Translate research findings into improvements for Turing’s products, platforms, and AI capabilities.
• Help identify which ideas are ready to move from exploration into scalable, real-world applications.
• Communicate technical findings clearly to both specialized and cross-functional audiences.
4. Contribute to the Research Community
• Share findings through technical reports, publications, open-source work, workshops, or conference participation where appropriate.
• Contribute to Turing’s research culture through technical discussions, peer review, mentorship, and collaboration.
• Represent Turing thoughtfully within the broader AI research community.
What We’re Looking For
• Research background: PhD or Master’s degree in artificial intelligence, machine learning, computer science, or a closely related technical field; exceptional equivalent research experience will also be considered.
• Technical depth: Strong foundation in machine learning and practical experience designing experiments, training or evaluating models, and working with modern AI tooling.
• Relevant expertise: Demonstrated research experience in synthetic or agentic data generation, reinforcement learning or post-training, AI understanding, evaluation, or benchmarks.
• Research engineering ability: Strong programming skills and the ability to implement, test, and iterate quickly in a research environment.
Interview problems reported for Turing
Reported by candidates and public write-ups, not by Turing. Practise each one here:
- Longest Substring Without Repeating Characters — Medium
- Valid Parentheses — Easy
- Longest Palindromic Substring — Medium
- Two Sum — Easy
- Best Time to Buy and Sell Stock — Easy
- Number of Islands — Medium
- Group Anagrams — Medium
- Product of Array Except Self — Medium
- 3Sum — Medium
- Maximum Subarray — Medium
- Jump Game — Medium
- Merge Intervals — Medium
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