Technical Product Manager

Posted 2 Days Ago
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Toronto, ON, CAN
Hybrid
130K-160K Annually
Mid level
Blockchain • Database • Analytics
The Role
Own the roadmap and lifecycle of data and AI products, from enterprise discovery and problem definition through delivery, launch, and iteration. Translate business needs into product requirements, partner with engineering, data engineering, and design, define measurable outcomes, lead Agile ceremonies, prioritize feedback-driven improvements, and communicate risks and trade-offs to stakeholders. The role also contributes to product discovery, prioritization, and delivery practices.
Summary Generated by Built In

ABOUT SHYFTLABS

ShyftLabs is a data and AI company. Since 2020 we've partnered with Fortune 500 organizations across retail, healthcare, finance, energy, and the public sector to turn messy enterprise data into systems that actually move the business. Our team of 200+ builds privacy-first AI, modern data infrastructure, and analytics products that have unlocked hundreds of millions in measurable value for our clients.

We're scaling quickly, and we hire people who'd rather ship something real than write another deck about it.

THE OPPORTUNITY

We're looking for a Technical Product Manager to own a portfolio of data and AI products and take Product from problem definition through launch and iteration. You'll sit between enterprise clients, engineering, and data science, translating ambiguous business problems into clear product bets, then driving them to delivery.

This is a hands-on role at a company where the products are technical and the customers are demanding. You'll spend as much time in discovery conversations with client stakeholders as you do in backlog refinement with engineers. If you like owning outcomes rather than tickets, and you're comfortable being the person accountable when a launch either works or doesn't, this is a good fit.

This role is based in Toronto and follows a hybrid schedule, with three days per week in our downtown office.

What You'll Be Doing

  • Own the roadmap for one or more data and AI product lines — you set priorities, you defend the trade-offs, and you're accountable for the results.

  • Run discovery directly with enterprise clients and internal stakeholders to identify high-value problems worth solving, and separate them from the noise.

  • Write clear, decision-ready product requirements: user stories, acceptance criteria, data contracts, edge cases, and what “done” actually means.

  • Partner day-to-day with engineering, data engineering, and design to sequence delivery, unblock decisions quickly, and keep scope honest.

  • Define success metrics up front, adoption, data quality, time-to-insight, model reliability, cost per outcome, and instrument products so those metrics are observable after launch.

  • Lead sprint ceremonies alongside engineering leads and keep delivery predictable without turning the team into a ticket factory.

  • Turn client feedback, usage data, and support signals into a prioritized backlog of improvements rather than a list of one-off requests.

  • Manage launches end to end: rollout plans, enablement material, internal training, and post-launch review.

  • Communicate roadmap status, risks, and trade-offs clearly to senior stakeholders on both the client and ShyftLabs sides.

  • Contribute to how we do product here, our discovery practices, prioritization frameworks, and delivery rituals are still being shaped, and we want your input on them.

What You'll Bring

  • 3–6 years of product management experience, including at least 2 years shipping data, analytics, platform, or AI-powered products.

  • A track record of taking products from problem statement to production, not just maintaining an existing backlog.

  • Strong technical fluency: you can hold your own in an architecture discussion, read a data model, reason about APIs and integrations, and understand why a pipeline decision has downstream consequences.

  • Comfort working with enterprise stakeholders, including the ability to push back constructively on a request that isn't the right thing to build.

  • Analytical rigour, you use data to frame decisions and you're honest about what the data doesn't tell you.

  • Experience with Agile delivery and modern product tooling (Jira, Confluence, Figma, or equivalents).

  • Excellent written communication. Much of the job is writing things down clearly enough that people can act on them.

  • Bachelor's degree in Computer Science, Engineering, Business, or a related field, or equivalent practical experience

Nice to Have

  • Background in retail, commerce media, or retail media networks.

  • Familiarity with LLM-based products: RAG, prompt orchestration, tool calling, evaluation frameworks, and guardrails.

  • Working knowledge of cloud data platforms such as Databricks, Snowflake, or BigQuery, and how they shape product constraints.

  • SQL skills sufficient to answer your own questions without waiting on someone else.

  • Prior experience in a startup or client-facing product environment.

Salary Range

  • $130,000 - $160,000 (CAD)

Skills Required

  • 3-6 years of product management experience
  • At least 2 years shipping data, analytics, platform, or AI-powered products
  • Track record of taking products from problem statement to production
  • Strong technical fluency, including architecture discussions, data models, APIs, and integrations
  • Experience working with enterprise stakeholders
  • Analytical decision-making skills using data
  • Experience with Agile delivery and modern product tooling such as Jira, Confluence, or Figma
  • Excellent written communication skills
  • Bachelor's degree in Computer Science, Engineering, Business, or a related field, or equivalent practical experience
  • Background in retail, commerce media, or retail media networks
  • Familiarity with LLM-based products, including RAG, prompt orchestration, tool calling, evaluation frameworks, and guardrails
  • Working knowledge of Databricks, Snowflake, or BigQuery
  • SQL skills sufficient for independent analysis
  • Prior experience in a startup or client-facing product environment
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The Company
HQ: Toronto, Ontario
110 Employees
Year Founded: 2018

What We Do

We provide customized data and analytics consulting services, including automation and software development for a sustainable and intuitive digital transformation.

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