Montreal Exchange

Senior Analyst, Risk Data Scientist

Montreal Exchange$80K — $110K *
Finance & Insurance
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's degree in Computer Science, Engineering, Mathematics, or a Master's in Financial Engineering or similar field focusing on finance and data science.
  • 3-5 years of experience in financial risk management with a combination of finance and programming skills.
  • Advanced proficiency in Python, particularly with OOP, Pandas, NumPy, and scientific computing libraries.
  • Strong knowledge of SQL and experience with database querying.
  • Proven problem-solving and analytical skills, adept in managing complex projects under pressure.

Responsibilities

  • Design and develop foundational Python libraries for core financial models and mathematical logic.
  • Build robust and efficient risk calculation applications that process complex data and generate analytical outputs.
  • Utilize advanced quantitative techniques for analyzing various financial products including equities and derivatives.
  • Collaborate with team members to enhance computational performance and implement continuous integration/continuous deployment best practices.
  • Produce and maintain detailed documentation and solution diagrams for applications and models.

Benefits

  • Hybrid work model with 2-3 days in office per week in Montreal, QC.
  • Opportunity to work at the intersection of finance and technology.
  • Engagement with advanced quantitative analysis and models in financial risk management.
  • Collaboration with diverse teams across Infrastructure and Reporting pillars.
  • Professional development opportunities in risk management and financial engineering certifications.
Full Job Description
TMX's Post Trade Risk Management team manages financial risks for The Canadian Depository for Securities Limited (CDS) and The Canadian Derivatives Clearing Corporation (CDCC), developing and maintaining robust procedures, models, systems, and reporting aligned with TMX policies, TMX risk appetite, and PFMIs.

Reporting to the Senior Manager, Risk Integration, this role sits at the intersection of quantitative finance and software engineering. You will be a driving force behind our Core Risk Libraries and Calculation Applications. Your mandate is to design the foundational financial mathematics, package them into shared Python libraries, and build the robust calculation applications that process raw transactional data into actionable risk metrics. Collaborating closely with our Infrastructure and Reporting pillars, you will ensure our mathematical models are scalable, accurate, and seamlessly integrated into production.

This role reports to: Senior Manager, Quantitative Risk Management

Job Location: Hybrid (2-3 days in office) - based in Montreal, QC.

Key Responsibilities:

  • Core Risk Libraries & UAT: Design, develop, and maintain the foundational Python libraries containing core financial logic and mathematical models. Package and publish these libraries to our central artifact repository. Develop the UAT tools and frameworks necessary to validate third-party integrations against strict risk logic before they go live.
  • Calculation Applications: Consume core libraries to architect and build robust, scalable risk calculation applications. Ensure these applications efficiently process complex models and write high-quality analytical outputs to our databases for downstream reporting.
  • Quantitative Analysis & Modeling: Apply advanced data science and quantitative techniques for the in-depth analysis of equities, fixed income, derivatives, and structured products.
  • Continuous Improvement & Automation: Collaborate with the Analytics Infrastructure owner to containerize applications, optimize computational performance, and adhere to CI/CD best practices.
  • Documentation: Create and maintain comprehensive application documentation, solution diagrams, and mathematical flowcharts.


Skills and Experience:

  • Education: Bachelor's degree in Computer Science, Engineering, Mathematics, or a Master's degree in Financial Engineering (or a related field with a strong focus on finance and data science).
  • Experience: 3-5 years of hybrid experience bridging finance and programming; proven application of data science techniques in financial risk management.
  • Technical Skills:
    • Advanced proficiency in Python (including OOP, Pandas, NumPy, and scientific computing libraries).
    • Strong knowledge of SQL and database querying.
    • Experience with code versioning (Git) and software development lifecycles.

  • Problem Solving: Strong time management, analytical skills, and the ability to prioritize complex technical projects in a high-pressure environment.


Nice to Have:

  • Certifications: FRM, PRM, or progression within the CFA program.
  • Tools & Architecture: Familiarity with LaTeX for mathematical documentation, Atlassian product suite (Jira, Confluence), and basic knowledge of containerization (Docker) or artifact management (Nexus).
  • Data Visualization: Familiarity with Business Intelligence tools (e.g., Tableau).

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