Amazon Advertising Canada Inc.

Machine Learning Science, Applied Science, Advertising

Sr.AppliedScientist

CA$165–235k ~AI est. Toronto, Ontario, Canada FULL TIME
Market Sentiment
HIGH DEMAND

Neural analysis suggests this role is
optimal for Senior candidates.

The Brief

“Sr. Applied Scientist at Amazon Advertising Canada Inc.. Skills: Agentic AI, Machine learning, LLMs, Reinforcement learning. Lead business, science and engineering strategy and roadmap. Design and build agents”

What You'll Achieve.

Deliver customer-facing products; Advance the agent ecosystem; Ensure safety, reliability, and trust at scale; Help advertisers create, optimize, and grow their campaigns; Transform every aspect of the advertising lifecycle; Balance the needs of advertisers; Enhance the shopping experience; Strengthen the marketplace; Meet advertising needs; Outsized impact on advertiser success

Industry & Context.

Machine Learning Science, Applied Science, Advertising
Problems you'll solve

Ambiguous technical problems

What They're Looking For.

Must Have

Master's degree and 6+ years of applied research experience, 3+ years of building machine learning models for business application, Experience programming in Java, C++, Python or related language, Experience with neural deep learning methods and machine learning

Nice to Have

PhD preferred, Experience with modeling tools such as R, scikit-learn, Spark MLLib, MxNet, Tensorflow, numpy, scipy, Experience with large scale distributed systems such as Hadoop, Spark, Cloud platform certs

What You'll Do.

science and engineering strategy and roadmap

Design and build agents

Design and implement advanced model and agent optimization

Curate datasets and tools

Build evaluation pipelines for agent workflows

Develop agentic architectures

Prototype and iterate on multi-agent orchestration frameworks

Collaborate with peers across engineering and product

Stay current with the latest research in LLMs

Translate findings into practical applications

How You'll Work.

Team & Collaboration

Collaborating with scientists, engineers, and product managers; Collaborate with peers across engineering and product; Collaborate with stakeholders across Ad Console, Sales, and Marketing

Process & Methodology

Roadmap

Full Job Description

We are looking for a passionate Applied Scientist to help pioneer the next generation of agentic AI applications for Amazon advertisers. In this role, you will design agentic architectures, develop tools and datasets, and contribute to building systems that can reason, plan, and act autonomously across complex advertiser workflows. You will work at the forefront of applied AI, developing methods for fine-tuning, reinforcement learning, and preference optimization, while helping create evaluation frameworks that ensure safety, reliability, and trust at scale. You will work backwards from the needs of advertisers—delivering customer-facing products that directly help them create, optimize, and grow their campaigns. Beyond building models, you will advance the agent ecosystem by experimenting with and applying core primitives such as tool orchestration, multi-step reasoning, and adaptive preference-driven behavior. This role requires working independently on ambiguous technical problems, collaborating closely with scientists, engineers, and product managers to bring innovative solutions into production. Key job responsibilities - Lead business, science and engineering strategy and roadmap for Sponsored Products Agentic Advertiser Guidance. - Design and build agents to guide advertisers in conversational and non-conversational experience. - Design and implement advanced model and agent optimization techniques, including supervised fine-tuning, instruction tuning and preference optimization (e.g., DPO/IPO). - Curate datasets and tools for MCP. - Build evaluation pipelines for agent workflows, including automated benchmarks, multi-step reasoning tests, and safety guardrails. - Develop agentic architectures (e.g., CoT, ToT, ReAct) that integrate planning, tool use, and long-horizon reasoning. - Prototype and iterate on multi-agent orchestration frameworks and workflows. - Collaborate with peers across engineering and product to bring scientific innovations into production.

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