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Product Analyst, Data Platform and Analytics

Job in Toronto, Ontario, M5A, Canada
Listing for: CaseWare
Full Time, Part Time position
Listed on 2026-09-01
Job specializations:
  • IT/Tech
    Data Analyst, Business Systems & Technology Analysis, Business Intelligence
Job Description & How to Apply Below
Caseware is one of Canada's original Fintech companies, having led the global audit and accounting software industry for over 30 years, with more than 500,000 users across 130 countries and available in 16 different languages. While you might not have heard of us (yet) over 36,000 accounting and audit professionals list Caseware as a skill on their Linked In profiles!

The audit & assurance profession is the foundation oftrust in ourfinancial system and global economy—an essential mission undergoing profound transformation. In a rapidly evolving technologylandscape,accountantsrequireworld-classtoolstoenhancetrust,driveefficiency, strengthen their capability, and elevate their impact.

At Caseware, we are at the forefront of this transformation, defining and building the future of accounting technology. We seek a Product Analyst, Data Platform and Analytics to play a critical role in advancing our metric driven culture within our Product Organization.

Youwillworkcloselywith Product,Design, Finance, Commercialand Engineering Teamstodefinesuccessmetrics , buildanalyticalframeworks,co-designexperiments,andensuredata-drivendecision-makingisat the core of our product development process.

This is a full-time permanent position

This is a new vacancy

Location:

This is a hybrid role requiring the successful candidate to work 3days a week in our Toronto office, located at 351 King St E , Toronto, ON.

What you will be doing:

  • Own end-to-end product analytics across the full data stack — from pipeline work in our data lakehouse (Microsoft Fabric / Delta Lake) to insight delivery — ensuring data is clean, trusted, and decision-ready.

  • Conduct deep AI trace analysis using Langfuse and similar observability tooling to surface patterns in model behavior, latency, quality, and user interaction across AI-powered features.

  • Build and own funnel analysis across the customer lifecycle — activation, adoption, engagement, retention — identifying drop-off points and quantifying the impact of product changes.

  • Define, track, and report on core product and revenue metrics including NPS, ARR per user, active users, feature adoption rates, and firm-level engagement signals.

  • Build dashboards and scalable reporting in Power BI (Microsoft Fabric) that unify data across systems and make insights accessible to the full organization.

  • Go beyond surface metrics own the "so what," synthesizing data into clear, opinionated recommendations that influence product prioritization and roadmap decisions.

  • Partner with Product Managers to validate hypotheses, run experiments, and measure feature performance with statistical rigor.

  • Tackle data quality head-on diagnose gaps, inconsistencies, and structural issues across our data estate, and work with engineering to close them systematically.

  • Navigate ambiguity confidently work with incomplete, inconsistent, and loosely structured data and still produce reliable, high-trust outputs that teams can act on.

  • What you will bring:

  • 3+ years in product, business, or data analytics in a SaaS or technology environment.

  • Solid grounding in SQL and Python — comfortable enough to write queries, wrangle data, and work with APIs, even if AI tools do some of the heavy lifting. What matters is that you can read, validate, and direct the output, not just run it.

  • Hands-on experience with data lakehouse platforms (Microsoft Fabric, Databricks, Snowflake, or similar); able to work with engineering teams to improve pipeline quality and schema design.

  • Experience with BI and visualization tools;
    Power BI and Microsoft Fabric are a strong plus.

  • Familiarity with product analytics platforms (Pendo, Amplitude, Mixpanel, or similar) and AI observability tools such as Langfuse.

  • Proven ability to build funnel analyses, cohort studies, and retention models — not just report numbers, but explain what they mean and what to do about them.

  • Comfortable operating in messy data environments — you know how to assess data quality, make defensible assumptions, and communicate confidence levels clearly.

  • A habitual AI user — you reach for AI tools as a default, not an afterthought. You use them to accelerate analysis, pressure-test logic, generate hypotheses, and…

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