Amazon Development Centre Canada ULC

Applied Science, selling partner services

AppliedScientistII,BrandRegistry

CA$149–249k Toronto, Ontario, Canada FULL TIME
Market Sentiment
HIGH DEMAND

Neural analysis suggests this role is
optimal for Mid candidates.

The Brief

“Applied Scientist II, Brand Registry at Amazon Development Centre Canada ULC. Skills: Machine Learning, Generative AI, LLM, Agentic AI. Build agent-based AI systems. Own ML lifecycle”

What You'll Achieve.

Deliver measurable business impact

Industry & Context.

Applied Science, selling partner services
Problems you'll solve

Break down complex problems

What They're Looking For.

Must Have

3+ years building models, PhD or Master's degree, 4+ years CS, CE, ML experience, Experience in patents or publications, Experience programming in Java, C++, Python, Experience in algorithms and data structures, Experience in parsing, Experience in numerical optimization, Experience in data mining, Experience in parallel and distributed computing, Experience in high-performance computing

Nice to Have

Experience using Unix/Linux

What You'll Do.

Build agent-based AI systems

Experiment with models

Work backwards from data insights

Identify science opportunities

Translate opportunities into solutions

Partner with product managers

Partner with engineering teams

Collaborate with domain experts

Pioneer innovative approaches

How You'll Work.

Team & Collaboration

Product managers; Engineering teams; Domain experts; Science teams; Legal teams; Selling partner experience teams

Full Job Description

The Brand Registry team is seeking an Applied Scientist to tackle complex, high-impact problems that directly affect millions of brands, selling partners, and customers on Amazon. You will design, develop, and deploy AI solutions—leveraging large language models (LLMs) and agentic AI frameworks—to power intelligent automation that augments human decision-making and drives autonomous outcomes at scale. What You'll Do -Build agent-based AI systems that reason, plan, and act like domain experts progressing from decision-support tools to fully autonomous solutions -Own the end-to-end ML lifecycle, from problem formulation and data analysis through experimentation, model development, and production deployment -Work backwards from data insights and customer feedback to identify the highest-value science opportunities and translate them into scalable machine learning solutions -Partner closely with product managers and engineering teams to define requirements, iterate rapidly, and launch solutions that deliver measurable business impact -Collaborate with domain experts across Amazon to pioneer innovative approaches to unsolved problems in brand protection and seller experience What We're Looking For -Technical depth: Extensive hands-on experience in Machine Learning, with a strong focus on Generative AI and LLM-based applications (e.g., fine-tuning, prompt engineering, retrieval-augmented generation, multi-agent orchestration) -End-to-end delivery: Proven track record of driving large-scale ML initiatives from conception through production launch in fast-paced, ambiguous environments -Scientific rigor: Strong foundation in experimental design, statistical analysis, and the ability to translate research into production-grade systems -Customer obsession: A bias toward working backwards from real-world problems and customer pain points rather than technology for its own sake -Entrepreneurial mindset: Comfort with ambiguity, a bias for action, and the tenacity to break down co

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