Staff Research Scientist - Reinforcement Learning

Posted 2 Days Ago
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Hiring Remotely in Redmond, WA, USA
In-Office or Remote
200K-250K Annually
Senior level
Artificial Intelligence
The Role
Lead research and engineering for RL-based post-training of LLMs: design simulations and reward functions, implement RLHF/DPO/GRPO pipelines, build multi-turn tool-using agents, mentor staff, and productionize research.
Summary Generated by Built In

About Centific

Centific is a frontier AI data foundry that curates diverse, high-quality data, using our purpose-built technology platforms to empower the Magnificent Seven and our enterprise clients with safe, scalable AI deployment. Our team includes more than 150 PhDs and data scientists, along with more than 4,000 AI practitioners and engineers. We harness the power of an integrated solution ecosystem—comprising industry-leading partnerships and 1.8 million vertical domain experts in more than 230 markets—to create contextual, multilingual, pre-trained datasets; fine-tuned, industry-specific LLMs; and RAG pipelines supported by vector databases. Our zero-distance innovation™ solutions for GenAI can reduce GenAI costs by up to 80% and bring solutions to market 50% faster.

Our mission is to bridge the gap between AI creators and industry leaders by bringing best practices in GenAI to unicorn innovators and enterprise customers. We aim to help these organizations unlock significant business value by deploying GenAI at scale, helping to ensure they stay at the forefront of technological advancement and maintain a competitive edge in their respective markets.

About Job

About Centific

Centific is a frontier AI data foundry that curates diverse, high-quality data, using our purpose-built technology platforms to empower the Magnificent Seven and our enterprise clients with safe, scalable AI deployment. Our team includes more than 150 PhDs and data scientists, along with more than 4,000 AI practitioners and engineers. We harness the power of an integrated solution ecosystem—comprising industry-leading partnerships and 1.8 million vertical domain experts in more than 230 markets—to create contextual, multilingual, pre-trained datasets; fine-tuned, industry-specific LLMs; and RAG pipelines supported by vector databases. Our zero-distance innovation™ solutions for GenAI can reduce GenAI costs by up to 80% and bring solutions to market 50% faster.

 

Our mission is to bridge the gap between AI creators and industry leaders by bringing best practices in GenAI to unicorn innovators and enterprise customers. We aim to help these organizations unlock significant business value by deploying GenAI at scale, helping to ensure they stay at the forefront of technological advancement and maintain a competitive edge in their respective markets.

About Job

What You'll Do

  • Design simulation environments and digital twins for enterprise workflows
  • Post-train LLM agents using RLHF, DPO, GRPO, PPO, and emerging methods
  • Build pipelines that convert human-labeled traces and verifiable signals into training data
  • Architect multi-turn, tool-using agents with closed learning loops
  • Design reward functions and verifiers that resist reward hacking and reflect real task outcomes
  • Set the technical bar across the team — architecture, code review, engineering standards
  • Mentor researchers and engineers; drive technical direction through influence
  • Translate research into production; contribute to publications

Required Qualifications

Experience & Education

  • 7+ years in ML/AI research or engineering; 3+ years at senior/staff level
  • MS or PhD in Computer Science, Machine Learning, or related field (or equivalent)
  • 5+ years hands-on RL — environment design, reward engineering, policy optimization — with at least one production deployment

LLM Post-Training

  • 3+ years fine-tuning LLMs with hands-on RL post-training (RLHF, DPO, GRPO, PPO)
  • Expert-level implementation of RLHF pipelines, reward modeling (Bradley-Terry), DPO, and KTO
  • Working knowledge of modern post-training and rollout-serving libraries (TRL, veRL, OpenRLHF, SkyRL)

Agent Engineering

  • Experience building LLM-based agents: tool use, multi-turn reasoning, trajectory evaluation
  • Strong Python and software engineering skills — comfortable building production pipelines, not just notebooks

RL Foundations

  • Deep expertise in MDPs, policy gradient methods (PPO, SAC), and temporal difference learning
  • Hands-on experience with Gymnasium-based environments and reward engineering (sparse vs. dense)

Preferred Qualifications

  • Publications at NeurIPS, ICML, ICLR, ACL, COLM, or similar venues
  • Open-source contributions to post-training or agent frameworks (TRL, veRL, OpenRLHF, SkyRL)
  • Experience with Offline RL (CQL, IQL), Model-based RL / World Models, or Hierarchical RL
  • Background in synthetic data generation, simulation, or world models
  • Domain experience in healthcare, finance, logistics, or compliance
  • Distributed training on GPU clusters

Why Join Centific

  • Lead the frontier. Shape a new discipline at the intersection of post-training, simulation, and enterprise AI.
  • Ship your science. See your research power real systems across healthcare, finance, and safety-critical operations.
  • Collaborate with leaders. Work alongside NVIDIA, Microsoft, and the global AI community.
  • Build what matters. Create governed, compliant AI systems enterprises can actually trust.

Salary: $200k-$250k

How to Apply

Send your CV, a description of a technically complex system you personally built or led, and (if applicable) your publication list or open-source contributions to:

[email protected] 

Subject: Senior Staff Research Scientist – RL

Centific is an equal-opportunity employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, national origin, ancestry, citizenship status, age, mental or physical disability, medical condition, sex (including pregnancy), gender identity or expression, sexual orientation, marital status, familial status, veteran status, or any other characteristic protected by applicable law. We consider qualified applicants regardless of criminal histories, consistent with legal requirements.

Skills Required

  • 7+ years in ML/AI research or engineering
  • 3+ years at senior/staff level
  • MS or PhD in Computer Science, Machine Learning, or related field (or equivalent)
  • 5+ years hands-on RL experience (environment design, reward engineering, policy optimization) with at least one production deployment
  • 3+ years fine-tuning LLMs with hands-on RL post-training (RLHF, DPO, GRPO, PPO)
  • Expert-level implementation of RLHF pipelines and reward modeling (Bradley-Terry), DPO, and KTO
  • Working knowledge of modern post-training and rollout-serving libraries (TRL, veRL, OpenRLHF, SkyRL)
  • Experience building LLM-based agents: tool use, multi-turn reasoning, trajectory evaluation
  • Strong Python and software engineering skills; production pipeline development experience
  • Deep expertise in MDPs, policy gradient methods (PPO, SAC), and temporal difference learning
  • Hands-on experience with Gymnasium-based environments and reward engineering (sparse vs. dense)
  • Publications at top ML/AI venues (NeurIPS, ICML, ICLR, ACL)
  • Open-source contributions to post-training or agent frameworks (TRL, veRL, OpenRLHF, SkyRL)
  • Experience with Offline RL (CQL, IQL), model-based RL, world models, or hierarchical RL
  • Background in synthetic data generation, simulation, or world models
  • Domain experience in healthcare, finance, logistics, or compliance
  • Distributed training on GPU clusters

Centific Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Centific and has not been reviewed or approved by Centific.

  • Healthcare Strength Feedback suggests core medical, dental, and vision coverage is comprehensive, with mental‑health support included. U.S. offerings also include HSA/FSA and are described as solid insurance options.
  • Flexible Benefits Feedback suggests flexible hours and work‑from‑anywhere options are widely promoted, with flexible PTO available in some contexts. Learning stipends and development programs add adaptable elements to the package.
  • Parental & Family Support Feedback suggests paid parental leave is explicitly available to all parents. This positions family leave as an accessible component of the overall package.

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The Company
HQ: Redmond, WA
2,900 Employees

What We Do

Zero distance innovation for GenAI creators and industries Expertly engineering platforms and curating multimodal, multilingual data, we empower the ‘Magnificent Seven’ and enterprise clients with safe, scalable AI deployment We a team of over 150 PhDs and data scientists, along with more than 4,000 AI practitioners and engineers. We bring platforms, partners and 1.8 million vertical domain experts to create high-quality pre-trained datasets, fine-tuned industry-specific LLMs, and RAG pipelines supported by vector databases. These innovations can reduce GenAI costs by up to 80% and bring GenAI solutions to market 50% faster in 230 locales.

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