Amazon Development Center

Applied Science, kindlecontent

AppliedScientist,Personalization

$780–1300k ~AI est. Haifa, Haifa, Israel FULL TIME
Market Sentiment
HIGH DEMAND

Neural analysis suggests this role is
optimal for Mid+ candidates.

The Brief

“Applied Scientist, Personalization at Amazon Development Center. Skills: Machine Learning, Generative AI, Personalization, Customer memory. Design ML and LLM-powered solutions. Build ML and LLM-powered solutions”

What You'll Achieve.

Improve customer experiences; Deliver high-quality systems; Deliver scalable systems

Industry & Context.

Applied Science, kindlecontent
Problems you'll solve

Problem solving

What They're Looking For.

Must Have

Knowledge of computer science fundamentals, Excellent coding and design skills, Proficiency with Java or Python, Several publications at top-tier conferences or journals, Communication and collaboration skills, Master's degree and experience in CS, CE, ML or related field research

Nice to Have

Experience in building and launching deep learning and machine learning models, Solid knowledge of big data and cloud technologies, Experience with information retrieval, Experience with recommender systems, Experience with natural language processing, Experience with personalization algorithms, Publications at top Web, Machine Learning, Natural Language Processing conferences

What You'll Do.

Design ML and LLM-powered solutions

Build ML and LLM-powered solutions

Extract customer knowledge

Validate customer knowledge

Apply customer knowledge in production systems

Own end-to-end delivery of ML solutions

Conduct offline experimentation

Conduct online experimentation

Deploy solutions at scale

Deliver scalable systems

Power customer-facing experiences

Drive work across fact extraction

Drive work across memory quality

Drive work across memory lifecycle

Drive work across temporal reasoning

Drive work across grounded personalization

Navigate tradeoffs between quality

Collaborate with engineering teams

Collaborate with product teams

Translate research into customer impact

How You'll Work.

Team & Collaboration

Engineering teams; Product teams

Full Job Description

We are seeking an Applied Scientist to help build Amazon’s next-generation customer memory and personalization systems. Are you interested in building systems that move beyond reacting to customer behavior, to actually understanding and remembering it over time? Our team is building Amazon’s customer memory layer – a system that extracts, curates, and reasons over customer knowledge to power next-generation personalization. This includes transforming noisy, unstructured signals into durable, high-quality representations of customer preferences, intents, and life events, and using them in real time to improve customer experiences. We are part of Amazon’s Personalization organization, a high-performing group that leverages large-scale machine learning, generative AI, and distributed systems to deliver highly relevant customer experiences. We tackle challenging problems at the intersection of information extraction, knowledge representation, LLM reasoning, and recommendation systems. Our systems operate under real-world constraints of scale, latency, and quality, requiring careful tradeoffs between precision, recall, and responsiveness. This team plays a central role in defining how Amazon understands its customers, and how that understanding is applied across the shopping experience. As an Applied Scientist, you will design and build ML and LLM-powered solutions for Amazon's customer memory and personalization systems. You will work on how customer knowledge is extracted, validated, and applied in production systems. You will own the end-to-end delivery of ML solutions, from problem formulation and modeling to offline and online experimentation, and production deployment at scale. You will deliver high-quality, scalable systems that power customer-facing experiences. You will drive work across areas such as fact extraction, memory quality and lifecycle, temporal reasoning, and grounded personalization, while navigating tradeoffs between quality, latency, and coverage.

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