Senior Data Scientist

FlinksMontreal, QC
CA$120,000 - CA$160,000Remote

About The Position

Flinks is the embedded finance platform that brings together connectivity, intelligence, and payments — giving businesses the infrastructure they need to build and deliver seamless financial experiences at scale. As a leader in Open Finance in Canada, we’ve grown since 2016 into one of North America’s most trusted platforms for financial data access, enrichment, and money movement. We work with innovators across many industries, including lending, fintech, banking, insurance, and wealth management. Today, our platform connects to 15,000+ financial institutions across North America and powers over 1M monthly connections. We also give our customers unprecedented visibility into 4,500+ real-time financial insights to support smarter decisioning. Companies rely on Flinks to streamline onboarding, verify income, assess credit risk, and power faster payment experiences. We’re on a mission to drive financial innovation and help businesses build financial experiences that feel effortless, connected, and customer-first. That’s where you come in. We're hiring a Senior Data Scientist to own machine-learning models end to end - from framing the problem and designing the model through the training pipeline, deployment to a live endpoint and the model-quality monitoring that keeps it accurate in production. This is a hands-on, engineering-heavy data-science role: you build and ship your own models. Where this role sits: you own the models and their quality. Our Data Engineering function owns the shared data platform and serving infrastructure you build on - the warehouse, pipelines, governance, CI/CD and the operational reliability of the serving endpoints - so you stay focused on the science and the model lifecycle, not on running the platform. We're not building ML for ML's sake: we judge models by the business outcomes they move - risk reduction, enrichment accuracy, customer adoption, operational efficiency, revenue and connecting your model improvements to those outcomes is part of the role.

Requirements

  • Experience: 6-8 years building and shipping machine-learning models, including taking models to production yourself (training pipeline → served endpoint → monitoring).
  • Education: Bachelor's degree in a quantitative field (Computer Science, Statistics, Applied Mathematics, or related), a Master's or PhD is an asset, not a requirement - production-ML ability matters more than credentials here.
  • Non-negotiables: production-grade Python and the ability to take a model to a live, monitored service yourself, on a solid data-science / ML foundation. A notebook-only profile won't meet the bar.
  • Work authorization: must be legally authorized to work in Canada.

Nice To Haves

  • A Master's or PhD is an asset, not a requirement

Responsibilities

  • Own ML models end to end - frame the problem, write the design/RFC, build and train the model, ship it to a served endpoint and monitor its quality in production.
  • Build your model's training pipeline and package it for serving, deploying onto the shared platform Data Engineering builds and operates.
  • Own model quality, not the platform - you watch drift and performance and decide when to retrain.
  • Evaluate rigorously - experimental design, statistical validation, drift detection and retraining, champion-challenger evaluation and promotion.
  • Partner across the org - your model outputs feed the attributes/enrichment layer, payments risk, dashboards and client integrations, you'll collaborate with Data Engineering, backend, product and QA on contracts, deployment and rollout.
  • Move fast with AI-assisted development -we use it to accelerate implementation and experimentation, the highest-leverage contribution in this role comes from strong problem framing, system design, evaluation rigor and clear technical specifications.

Benefits

  • Health & Dental coverage as of Day 1
  • Flexible Paid Time Off (FTO)
  • Remote work environment with frequent in-person gatherings and activities.
  • Career development, learning opportunities and growth
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