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Agent guide: [/agents.md](https://www.wearedevelopers.com/agents.md). --- # Autonomous Learning Engineer - **Company:** Amazon.com, Inc. - **Location:** Plain City, OH, United States (Remote available) - **Experience:** Expert - **Salary:** $130,000.0 - $180,000.0 - **Contract:** Permanent contract - **Skills:** Artificial Intelligence, Amazon Web Services, Microsoft Azure, Program Optimization, Computer Programming, Continuous Integration, Learning Management Systems, Data Centers, Distributed Computing Environment, Distributed Systems, Python (Programming Language), Machine Learning, Tensorflow, Software Safety, Software Deployment, Reinforcement Learning, Google Cloud, Pytorch, Large Language Models, Multi-Agent Systems, Deep Learning, Kubernetes, Information Technology, Free and Open-Source Software, Machine Learning Operations, Virtual Agents, Docker - **Published:** September 25, 2026 - **Apply:** https://www.careerjet.com/jobad/usb31c55e795e9947f5df1f85f54af16a0 ## About the Role * Bachelor's or Master's degree in Computer Science, Artificial Intelligence, Machine Learning, Robotics, Mathematics, or a related technical discipline. * 10+ years of professional experience in Artificial Intelligence, Machine Learning, Deep Learning, or Reinforcement Learning. * Expert-level programming skills in Python and extensive experience with deep learning frameworks such as PyTorch, TensorFlow, or JAX. * Strong experience with reinforcement learning libraries such as Ray RLlib, Stable-Baselines3, CleanRL, or Acme. * Hands-on experience developing simulation environments using tools such as Gymnasium/OpenAI Gym, Isaac Sim, MuJoCo, Unity ML-Agents, or NVIDIA Omniverse. * Experience with distributed training, GPU acceleration, model optimization, and large-scale AI infrastructure. * Strong understanding of reinforcement learning theory, optimization, probability, stochastic processes, and decision-making algorithms. * Experience deploying AI solutions on cloud platforms such as AWS, Microsoft Azure, or Google Cloud Platform (GCP). * Excellent analytical, communication, collaboration, and technical leadership skills. Preferred Qualifications * Experience with RLHF, multi-agent reinforcement learning, robotics, autonomous systems, or control systems. * Hands-on experience with foundation models, LLM alignment, agentic AI, or autonomous AI agents. * Experience with MLOps, Kubernetes, Docker, CI/CD pipelines, and production AI deployment. * Publications in top AI conferences, open-source contributions, patents, or recognized technical leadership in reinforcement learning. * Knowledge of Responsible AI, AI safety, model governance, explainability, and regulatory compliance. * Ph.D. or Master's degree specializing in Artificial Intelligence, Machine Learning, Reinforcement Learning, Robotics, or Control Systems., + $96,000-166,300 per year Amazon is looking for a detail-oriented individual to join our Data Center Engineering Operations Team. This committed group works to maintain the critical physical infrastructure … ## Description Bright Vision Technologies is seeking a highly experienced Autonomous Learning Engineer with 10+ years of experience in Artificial Intelligence, Reinforcement Learning (RL), and Deep Learning to design, train, and deploy intelligent decision-making systems for complex real-world applications. The ideal candidate will possess deep expertise in Python, reinforcement learning, deep learning, simulation environments, distributed training, and RLHF (Reinforcement Learning from Human Feedback) while driving the architecture and deployment of scalable, production-ready autonomous learning solutions. Key Responsibilities * Design, develop, and deploy advanced reinforcement learning solutions for complex decision-making and autonomous systems. * Architect scalable reinforcement learning training pipelines using distributed computing and GPU-accelerated infrastructure. * Design, build, and optimize simulation environments for training and validating reinforcement learning agents. * Develop, implement, and evaluate modern RL algorithms, reward models, and policy optimization techniques. * Build autonomous learning systems leveraging RLHF, imitation learning, offline reinforcement learning, and multi-agent learning approaches. * Improve model convergence, sample efficiency, training stability, inference performance, and production scalability. * Integrate reinforcement learning models into production applications while ensuring reliability, safety, monitoring, and continuous improvement. * Collaborate with AI researchers, data scientists, software engineers, and product teams to deliver enterprise-scale AI solutions. * Mentor engineers and provide technical leadership on reinforcement learning architecture, experimentation, and engineering best practices. * Evaluate emerging reinforcement learning frameworks, algorithms, and research to drive continuous innovation. ## Related Videos - [Docker Compose: Rediscovered](https://www.wearedevelopers.com/videos/1978-docker-compose-rediscovered) - [Photonic Computing: Programming a New Class of AI Accelerators (incl. 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