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Research Analyst jobs in Canada

Data Scientist, Algorithms - Lyft Ads

Lyft

Toronto
Hybrid
CAD 108,000 - 135,000
30+ days ago
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Uncertified Laboratory Assistant - LHSC (Trainee) - March 2026 Intake

Dynacare

Kelowna
On-site
CAD 30,000 - 60,000
30+ days ago

Machine Learning Researcher, Deep Reinforcement Learning and Optimization

Qualcomm

Markham
On-site
CAD 80,000 - 120,000
30+ days ago

ML Researcher: Deep RL & Optimization for Embodied AI

Qualcomm

Markham
On-site
CAD 80,000 - 120,000
30+ days ago

Junior Mineralogist

SGS

Lakefield
On-site
CAD 60,000 - 80,000
30+ days ago
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Junior Mineralogist: Lab Research & Reporting

SGS

Lakefield
On-site
CAD 60,000 - 80,000
30+ days ago

Data Scientist – Center of Excellence (CoE), Personal Lines Pricing

Aviva

Toronto
Hybrid
CAD 80,000 - 110,000
30+ days ago

Pricing Data Scientist, CoE – Personal Lines (Hybrid)

Aviva

Toronto
Hybrid
CAD 80,000 - 110,000
30+ days ago
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Senior Applied AI/ML Scientist — GenAI & Production

Intello Technologies Inc.

Montreal
Hybrid
CAD 128,000 - 192,000
30+ days ago

Financial Analyst AI Researcher - Remote

Labelbox

Toronto
Remote
CAD 80,000 - 100,000
30+ days ago

Staff Applied AI/ML Scientist

Intello Technologies Inc.

Montreal
Hybrid
CAD 128,000 - 192,000
30+ days ago

Financial Analyst & AI Researcher: Data-Driven Insights

Labelbox

Toronto
Remote
CAD 80,000 - 100,000
30+ days ago

Chemical Process Scientist — Fusion & Clean Energy Research

Canadian Nuclear Laboratories

Laurentian Hills
On-site
CAD 75,000 - 95,000
30+ days ago

Lead Researcher, AI Infra & Cloud Networking

Huawei Technologies Canada Co., Ltd.

Markham
On-site
CAD 120,000 - 160,000
30+ days ago

Chemical Process Research Scientist

Canadian Nuclear Laboratories

Laurentian Hills
On-site
CAD 75,000 - 95,000
30+ days ago

Chief Researcher - Computer Network and Protocol

Huawei Technologies Canada Co., Ltd.

Markham
On-site
CAD 120,000 - 160,000
30+ days ago

Financial AI Scientist: Foundation Models & RAG Expert

Rock Connections

Windsor
On-site
CAD 90,000 - 120,000
30+ days ago

Environmental Field Scientist: Fieldwork & Remediation Lead

WSP in Canada

Nanaimo
Hybrid
CAD 70,000 - 90,000
30+ days ago

Senior Remediation Scientist — Remote Available

Montrose Environmental Group

Edmonton
Hybrid
CAD 135,000 - 175,000
30+ days ago

Senior AI Scientist: Agentic GenAI for Smart Home & Voice

Amazon

Vancouver
On-site
CAD 271,000 - 454,000
30+ days ago

Senior Remediation Scientist, Engineer, Geologist or Technologist

Montrose Environmental Group

Edmonton
Hybrid
CAD 135,000 - 175,000
30+ days ago

Sr. Applied Scientist, Alexa Connections

Amazon

Vancouver
On-site
CAD 271,000 - 454,000
30+ days ago

Molecular Immunology Research Scientist (qPCR)

Charles River Labs

Senneville
On-site
CAD 75,000 - 90,000
30+ days ago

Environmental Geochemist — Tailings & Water Quality Lead

bba

Montreal
Hybrid
CAD 80,000 - 100,000
30+ days ago

Field Ecologist: Aquatic Habitat Specialist

WSP

Northwestern Ontario
On-site
CAD 75,000 - 90,000
30+ days ago

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Data Scientist, Algorithms
Lyft
Toronto
Hybrid
CAD 108,000 - 135,000
Full time
30+ days ago

Job summary

A leading transportation media firm in Toronto is looking for an Algorithms Data Scientist to develop machine learning models for ad relevance and optimization. The role offers the chance to work with large datasets and collaborate closely with cross-functional teams. Candidates should have a Master's or PhD in a quantitative field, 3-5 years of applied science experience, and strong coding skills in Python. This position includes competitive compensation and expects in-office work at least three days a week.

Benefits

Health and dental coverage
Life insurance
Flexible paid time off
18 weeks of paid parental leave
Subsidized commuter benefits

Qualifications

  • 3–5 years of hands-on ML/applied science experience, ideally in production models.
  • Strong proficiency in Python and machine learning frameworks.
  • Experience with large-scale datasets and distributed data tools.

Responsibilities

  • Design, develop, and deploy machine learning models and algorithms for Lyft Ads.
  • Own the end-to-end lifecycle of modeling projects from definition to monitoring.
  • Collaborate with Ads Engineering for real-time ad-serving integration.

Skills

Machine Learning
Python
Statistical Analysis
Data Engineering
A/B Testing

Education

Master’s or PhD in Machine Learning, Computer Science, or related fields

Tools

PyTorch
TensorFlow
Spark
Job description

At Lyft, our purpose is to serve and connect. We aim to achieve this by cultivating a work environment where all team members belong and have the opportunity to thrive.

Lyft Ads is one of Lyft’s newest and fastest-growing businesses, focused on building the world’s largest transportation media network. Our mission is to help brands reach riders during key moments of their journey—before, during, and after a ride—by delivering meaningful, contextually relevant ad experiences. We operate at the intersection of mobility data, real-time decision systems, and AI-powered personalization, enabling advertisers to run high-impact campaigns with measurable outcomes.

We are seeking a Algorithms Data Scientist to help build the next generation of ads relevance, targeting, optimization, and measurement algorithms that power the Lyft Ads platform. In this role, you will work across large-scale datasets and complex real-time systems to design, prototype, and deploy production-grade machine learning models. You’ll collaborate closely with Engineering, Product, Data Science, and Sales to translate ambiguous business and advertiser needs into rigorous algorithmic solutions that improve ad performance, enhance marketplace efficiency, and drive meaningful revenue growth.

This is a high-impact, highly technical role within a rapidly scaling business line. The ideal candidate brings strong applied machine learning intuition, hands-on modeling experience, and the ability to write clean, efficient production code. You will play a critical role in shaping how advertisers connect with Lyft riders—pushing the boundaries of personalization, measurement, and real-time optimization in a dynamic marketplace.

Responsibilities
  • Design, develop, and deploy production-grade machine learning models and algorithms that power core Lyft Ads capabilities, such as ad relevance, targeting, ranking, bid optimization, pacing, campaign delivery, and measurement.
  • Own the end-to-end lifecycle of modeling projects — including problem definition, data exploration, feature engineering, model development, offline evaluation, deployment, and monitoring.
  • Collaborate closely with Ads Engineering to integrate models into real-time ad-serving and batch decision systems, ensuring performance across latency, scalability, and reliability constraints.
  • Analyze large-scale mobility, behavioral, and ads performance datasets to identify patterns, surface opportunities, and guide ML and AI driven product improvements.
  • Implement rigorous model evaluation frameworks, including offline metrics, statistical tests, calibration, sensitivity analysis, and A/B experimentation to validate both model impact and system-level outcomes.
  • Build robust training pipelines, feature transformations, and scoring infrastructure, ensuring reproducibility, observability, and long-term maintainability.
  • Partner with Product, Engineering, and Sales to translate ambiguous advertiser goals (e.g., increased conversions, reach efficiency, brand lift) into measurable requirements and success metrics.
  • Investigate and resolve model behavior issues, production regressions, calibration drift, and performance anomalies in close partnership with Ads Infra teams.
  • Drive innovation by staying current with advances in ML for ranking, recommendation, causal inference, optimization, and ads measurement — and proactively identifying opportunities to apply them.
  • Contribute to Lyft Ads’ modeling and experimentation infrastructure, through model cards, documentation, reproducibility standards, and code quality improvements.
Experience
  • Master’s, or PhD in Machine Learning, Computer Science, Statistics, Applied Mathematics, Engineering, or related quantitative fields; or equivalent applied industry experience.
  • 3–5 years of hands-on ML/applied science experience, ideally involving production models, large-scale systems, or ads/recommendation/relevance domains. Strong proficiency in Python and machine learning frameworks such as PyTorch, TensorFlow, JAX, or scikit-learn; ability to write clean, efficient, production-adjacent code.
  • Experience working with large-scale datasets and distributed data tools (Spark, Snowflake, Presto, Databricks).
  • Practical experience building and evaluating:
    • Ranking and relevance models
    • Optimization or pacing algorithms
    • Predictive models for CTR, CVR, or user response
    • Causal or experimentation-based measurement methods
  • Understanding of online/offline evaluation techniques, including:
    • Offline metrics (AUC, NDCG, MRR, calibration)
    • A/B testing methodologies
    • Bias correction and counterfactual estimation
  • Ability to solve ambiguous problems by structuring analyses, evaluating trade-offs, and proposing algorithmic solutions grounded in scientific rigor.
  • Strong communication skills, with an ability to model behavior, constraints, trade-offs, and recommendations to engineering, product, and sales partners.
  • Demonstrated ownership of modeling work, including debugging, monitoring, documentation, and iteration after deployment.
  • Curiosity, initiative, and a track record of delivering measurable improvements through high-quality modeling.
Benefits
  • Extended health and dental coverage options, along with life insurance and disability benefits
  • Mental health benefits
  • Family building benefits
  • Child care and pet benefits
  • Access to a Lyft funded Health Care Savings Account
  • RRSP plan to help save for your future
  • In addition to provincial observed holidays, salaried team members are covered under Lyft's flexible paid time off policy. The policy allows team members to take off as much time as they need (with manager approval). Hourly team members get 15 days paid time off, with an additional day for each year of service
  • Lyft is proud to support new parents with 18 weeks of paid time off, designed as a top-up plan to complement provincial programs. Biological, adoptive, and foster parents are all eligible.
  • Subsidized commuter benefits

Lyft is committed to creating an inclusive workforce that fosters belonging. Lyft believes that every person has a right to equal employment opportunities without discrimination because of race, ancestry, place of origin, colour, ethnic origin, citizenship, creed, sex, sexual orientation, gender identity, gender expression, age, marital status, family status, disability, pardoned record of offences, or any other basis protected by applicable law or by Company policy. Lyft also strives for a healthy and safe workplace and strictly prohibits harassment of any kind. Accommodation for persons with disabilities will be provided upon request in accordance with applicable law during the application and hiring process. Please contact your recruiter if you wish to make such a request.

Lyft highly values having employees working in-office to foster a collaborative work environment and company culture. This role will be in-office on a hybrid schedule — Team Members will be expected to work in the office at least 3 days per week, including on Mondays, Wednesdays, and Thursdays. Lyft considers working in the office at least 3 days per week to be an essential function of this hybrid role. Your recruiter can share more information about the various in-office perks Lyft offers. Additionally, hybrid roles have the flexibility to work from anywhere for up to 4 weeks per year. #Hybrid

The expected base pay range for this position in the Toronto area is CAD 108,000 - CAD $135,000. Salary ranges are dependent on a variety of factors, including qualifications, experience and geographic location. Range is not inclusive of potential equity offering, bonus or benefits. Your recruiter can share more information about the salary range specific to your working location and other factors during the hiring process.

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* The salary benchmark is based on the target salaries of market leaders in their relevant sectors. It is intended to serve as a guide to help Premium Members assess open positions and to help in salary negotiations. The salary benchmark is not provided directly by the company, which could be significantly higher or lower.

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