Remote Reinforcement Learning Engineer - Impactful AI

Bright Vision Technologies

Nashua (NH)

On-site

USD 100,000 - 150,000

Full time

7 days ago
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Job summary

Bright Vision Technologies is seeking a Reinforcement Learning Engineer for a fully remote role in the United States. The successful candidate will design, implement, and optimize RL solutions for sequential decision problems in both real and simulated environments, advancing scalable training infrastructure and robust evaluation practices.

You will work with applied scientists and product teams to identify high-value RL use cases, develop reward functions, and apply offline RL and RLHF

Qualifications

  • Master’s or PhD in Computer Science, Machine Learning, or a related field; or equivalent applied experience.
  • Six or more years of combined RL research and engineering experience.
  • Strong proficiency in Python and modern deep learning frameworks.
  • Hands-on experience with at least one major RL library or in-house RL stack.
  • Solid understanding of probability, optimization, and the theoretical foundations of RL.
  • Experience designing and tuning reward functions in non-trivial environments.
  • Familiarity with simulation environments and large-scale experience collection.
  • Experience training neural network policies on GPU clusters.
  • Strong written and verbal communication skills.
  • Track record of shipping or publishing impactful RL work.

Responsibilities

  • Design and implement reinforcement learning solutions for sequential decision-making problems in real and simulated environments.
  • Develop, calibrate, and maintain simulation environments suitable for large-scale agent training.
  • Implement and evaluate modern RL algorithms including policy gradient, actor-critic, off-policy, and offline RL methods.
  • Engineer reward functions and shaping strategies that align agent behavior with desired outcomes and safety constraints.
  • Apply offline RL and imitation learning techniques where exploration is costly or unsafe.
  • Use RLHF, DPO, and related techniques for fine-tuning large language models when relevant.
  • Build scalable training infrastructure for distributed RL, including efficient experience collection and replay systems.
  • Optimize training stability and sample efficiency through algorithmic and engineering improvements.
  • Design rigorous evaluation protocols, including out-of-distribution and adversarial test cases.
  • Implement safety mechanisms such as constraint enforcement, conservative policies, and human-in-the-loop oversight.
  • Collaborate with applied scientists and product teams to identify high-value RL use cases.
  • Monitor deployed policies and models in production for drift, regression, and unintended behaviors, building the alerting and dashboards that surface issues before they meaningfully affect users.
  • Document methodology, design decisions, and operational characteristics for internal stakeholders.
  • Stay current with RL research and translate promising techniques into production-ready solutions.

Skills

Python
Deep learning
RL libraries
Probability
Optimization
Reward design
Simulation environments
GPU clusters
Communication skills
RL research

Education

Master’s or PhD in Computer Science, Machine Learning, or a related field; or equivalent applied experience

Tools

In-house RL stack

Job description

Bright Vision Technologies is seeking a Reinforcement Learning Engineer for a fully remote role in the United States. The successful candidate will design, implement, and optimize RL solutions for sequential decision problems in both real and simulated environments, advancing scalable training infrastructure and robust evaluation practices.

You will work with applied scientists and product teams to identify high-value RL use cases, develop reward functions, and apply offline RL and RLHF

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