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Reinforcement Learning AI Engineer

Booz Allen Hamilton

Reinforcement Learning AI Engineer

full-timePosted: Aug 5, 2026Updated: Sep 2, 2026AL, Huntsville

Job Description

Reinforcement Learning AI EngineerThe Opportunity:Are you an innovative and experienced artificial intelligence (AI) developer specializing in reinforcement learning? Utilize your expertise in AI, data science, and machine learning (ML) engineering to train, test, deploy, and maintain models that learn from data to drive real-world mission critical impact. You will collaborate with dynamic teams to translate reinforcement learning research into operational capability and production-grade code, bringing significant technological advancements that drive mission success.You’ll join a growing community of ML engineers focused on delivering products and solutions to our customers’ most challenging problems. You’ll collaborate with a team of dedicated space, military, intelligence, engineering, and AI professionals to deliver cutting-edge solutions to solve issues of national importance.What You'll Work On:Design, implement, and train reinforcement learning (RL) and multi-agent reinforcement learning (MARL) algorithms for complex decision-making problems.Develop scalable training pipelines using Python and modern ML frameworks.Build and evaluate agents in simulated environments using Gym or PettingZoo, high-fidelity simulators, or custom environments.Apply RL techniques such as policy optimization, value-based learning, model-based RL, and imitation learning.Collaborate with domain experts to define reward structures, constraints, and evaluation metrics aligned with mission objectives.Implement distributed training workflows leveraging cloud compute, containerization, and orchestration technologies.Transition trained models into production systems, following strong software engineering best practices.Contribute to system architecture and performance optimization in Python with opportunities to extend into C++ or Rust for high-performance components. Join us. The world can’t wait.You Have: 3+ years of experience developing and training RL agentsExperience with AI, data science, ML engineering, or software engineeringExperience with Gym or PettingZoo interfacesExperience with ML frameworks such as PyTorch, TensorFlow, or JAXExperience developing technical solutions using Rust, Python, or C++Knowledge of RL and artificial neural networksSecret clearanceBachelor's degree in a CS, AI, or Engineering fieldNice If You Have: Experience applying RL to autonomy, control systems, or mission-scaleExperience with MARLExperience with AFSIM or other high-fidelity simulation environmentsExperience with embedded systems programming in Rust, C, or C++Experience in GPU programming, including CUDA or RAPIDExperience developing in-space solutionsKnowledge of modern software design patterns, including microservice design and orchestration in Kubernetes deploymentTS/SCI clearanceMaster’s degree in CS, AI, Engineering, or a related fieldClearance:Applicants selected will be subject to a security investigation and may need to meet eligibility requirements for access to classified information; Secret clearance is required.CompensationAt Booz Allen, we celebrate your contributions, provide you with opportunities and choices, and support your total well-being. Our offerings include health, life, disability, financial, and retirement benefits, as well as paid leave, professional development, tuition assistance, work-life programs, and dependent care. Our recognition awards program acknowledges employees for exceptional performance and superior demonstration of our values. Full-time and part-time employees working at least 20 hours a week on a regular basis are eligible to participate in Booz Allen’s benefit programs. Individuals that do not meet the threshold are only eligible for select offerings, not inclusive of health benefits. We encourage you to learn more about our total benefits by visiting the Resource page on our Careers site and reviewing Our Employee Benefits page.Salary at Booz Allen is determined by various factors, including but not limited to location, the individual’s particular combination of education, knowledge, skills, competencies, and experience, as well as contract-specific affordability and organizational requirements. The projected compensation range for this position is $99,000.00 to $225,000.00 (annualized USD). The estimate displayed represents the typical salary range for this position and is just one component of Booz Allen’s total compensation package for employees. This posting will close within 90 days from the Posting Date.Identity StatementAs part of the hiring process, we will ask you to complete an identity verification process that leverages advanced biometrics and artificial intelligence to ensure authenticity and protect against identity fraud. You are expected to be on camera during interviews and assessments. We reserve the right to take your picture to verify your identity and prevent fraud.Candidate AI Usage PolicyAI is a part of our daily work at Booz Allen, and we are committed to the responsible and ethical use of AI tools. However, we want to ensure a fair candidate process based on your own skills and knowledge. As part of this commitment, the use of artificial intelligence (AI) or other tools to assist with responses during interviews (whether in-person or virtual) is prohibited unless permission is explicitly provided. Work ModelOur people-first culture prioritizes the benefits of collaboration, whether it occurs in person or virtually. To support engagement and effective communication, employees working virtually are generally expected to have their cameras on during meetings.Remote: If this position is listed as remote, there may still be occasions when you are required to work in person at a Booz Allen or customer facility.Hybrid: If this position is listed as hybrid, you will be expected to work from a Booz Allen facility frequently, in alignment with leadership expectations and the needs of the role. You may also be required to work from or visit a customer facility.Onsite: If this position is listed as onsite, work will primarily be performed at a Booz Allen office or customer facility, where employees will collaborate directly with colleagues and customers as required by the role.Commitment to Non-DiscriminationAll qualified applicants will receive consideration for employment without regard to disability, status as a protected veteran or any other status protected by applicable federal, state, local, or international law.

Locations

  • AL, Huntsville
  • VA, McLean
  • CA, El Segundo
  • CO, Colorado Springs

Skills Required

  • Gymintermediate
  • ML frameworks such as PyTorchintermediate
  • MARLintermediate
  • AFSIMintermediate
  • embedded systems programming in Rustintermediate
  • GPU programmingintermediate
  • modern software design patternsintermediate

Required Qualifications

  • 3+ years of experience developing and training RL agents (experience, 3 years)
  • Experience with AI, data science, ML engineering, or software engineering (experience)
  • Experience with Gym or PettingZoo interfaces (experience)
  • Experience with ML frameworks such as PyTorch, TensorFlow, or JAX (experience)
  • Experience developing technical solutions using Rust, Python, or C++ (experience)
  • Knowledge of RL and artificial neural networks (experience)
  • Secret clearance (experience)
  • Bachelor's degree in a CS, AI, or Engineering field (degree in a cs)
  • 3+ years of experience developing and training RL agents (experience, 3 years)
  • Experience with AI, data science, ML engineering, or software engineering (experience)
  • Experience with Gym or PettingZoo interfaces (experience)
  • Experience with ML frameworks such as PyTorch, TensorFlow, or JAX (experience)
  • Experience developing technical solutions using Rust, Python, or C++ (experience)
  • Knowledge of RL and artificial neural networks (experience)
  • Secret clearance (experience)
  • Bachelor's degree in a CS, AI, or Engineering field (degree in a cs)
  • Experience applying RL to autonomy, control systems, or mission-scale (experience)
  • Experience with MARL (experience)
  • Experience with AFSIM or other high-fidelity simulation environments (experience)
  • Experience with embedded systems programming in Rust, C, or C++ (experience)
  • Experience in GPU programming, including CUDA or RAPID (experience)
  • Experience developing in-space solutions (experience)
  • Knowledge of modern software design patterns, including microservice design and orchestration in Kubernetes deployment (experience)
  • TS/SCI clearance (experience)
  • Master’s degree in CS, AI, Engineering, or a related field (degree in cs)
  • Experience applying RL to autonomy, control systems, or mission-scale (experience)
  • Experience with MARL (experience)
  • Experience with AFSIM or other high-fidelity simulation environments (experience)
  • Experience with embedded systems programming in Rust, C, or C++ (experience)
  • Experience in GPU programming, including CUDA or RAPID (experience)
  • Experience developing in-space solutions (experience)
  • Knowledge of modern software design patterns, including microservice design and orchestration in Kubernetes deployment (experience)
  • TS/SCI clearance (experience)
  • Master’s degree in CS, AI, Engineering, or a related field (degree in cs)

Responsibilities

  • Design, implement, and train reinforcement learning (RL) and multi-agent reinforcement learning (MARL) algorithms for complex decision-making problems.
  • Develop scalable training pipelines using Python and modern ML frameworks.
  • Build and evaluate agents in simulated environments using Gym or PettingZoo, high-fidelity simulators, or custom environments.
  • Apply RL techniques such as policy optimization, value-based learning, model-based RL, and imitation learning.
  • Collaborate with domain experts to define reward structures, constraints, and evaluation metrics aligned with mission objectives.
  • Implement distributed training workflows leveraging cloud compute, containerization, and orchestration technologies.
  • Transition trained models into production systems, following strong software engineering best practices.
  • Contribute to system architecture and performance optimization in Python with opportunities to extend into C++ or Rust for high-performance components.
  • Design, implement, and train reinforcement learning (RL) and multi-agent reinforcement learning (MARL) algorithms for complex decision-making problems.
  • Develop scalable training pipelines using Python and modern ML frameworks.
  • Build and evaluate agents in simulated environments using Gym or PettingZoo, high-fidelity simulators, or custom environments.
  • Apply RL techniques such as policy optimization, value-based learning, model-based RL, and imitation learning.
  • Collaborate with domain experts to define reward structures, constraints, and evaluation metrics aligned with mission objectives.
  • Implement distributed training workflows leveraging cloud compute, containerization, and orchestration technologies.
  • Transition trained models into production systems, following strong software engineering best practices.
  • Contribute to system architecture and performance optimization in Python with opportunities to extend into C++ or Rust for high-performance components.
  • Join us. The world can’t wait.

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