Sr. Manager, Applied Science, AWS Agentic AI
Amazon (AI roles) · Seattle, Washington, USA
No salary listed. Estimated from 440 salary-disclosed Operations roles on this board: $152K–$225K (interquartile range; estimate, not the employer's figure).
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Amazon Web Services (AWS) is looking for a sr. Manager, Applied to join the Quick Science team. Quick is AWS’s enterprise generative AI assistant that helps users answer questions, summarize documents, generate content, take actions, and automate workflows using information across enterprise systems. As a key member of this team, you will lead research and development efforts in generative AI and Agentic AI to enable intelligent agents that perform complex reasoning, automate multi-step workflows, and make enterprise users significantly more productive.
Key job responsibilities
You’ll work on building and optimizing multi-modal foundation models, training and fine-tuning state-of-the-art LLMs, and architecting systems that scale efficiently across domains. This role blends science leadership, development of applied scientists, innovation, and deep collaboration with engineering teams to bring research into production.
- PhD in Machine Learning, Computer Science, Electrical Engineering, or a related technical field OR a Master’s degree with 5+ years of relevant industry or research experience.
- Industry experience developing machine learning models for real-world applications.
- Experience with generative AI, including model training or building systems with pre-trained foundation models.
- Proven record of peer-reviewed publications or granted patents in AI/ML.
- Proficiency in Python or similar programming languages.
- Experience in at least one of the following areas: natural language processing (NLP), large language models (LLMs), computer vision, or Agentic AI.
Key job responsibilities
You’ll work on building and optimizing multi-modal foundation models, training and fine-tuning state-of-the-art LLMs, and architecting systems that scale efficiently across domains. This role blends science leadership, development of applied scientists, innovation, and deep collaboration with engineering teams to bring research into production.
- PhD in Machine Learning, Computer Science, Electrical Engineering, or a related technical field OR a Master’s degree with 5+ years of relevant industry or research experience.
- Industry experience developing machine learning models for real-world applications.
- Experience with generative AI, including model training or building systems with pre-trained foundation models.
- Proven record of peer-reviewed publications or granted patents in AI/ML.
- Proficiency in Python or similar programming languages.
- Experience in at least one of the following areas: natural language processing (NLP), large language models (LLMs), computer vision, or Agentic AI.
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