Senior ML Engineer, ML Platform - GFT
AI in this role
Job Description
What is the opportunity?
Are you a talented, creative, and results-driven professional who thrives on delivering high-performing applications. Come join us!
Global Functions Technology (GFT) is part of RBC’s Technology and Operations division. GFT’s impact is far-reaching as we collaborate with partners from across the company to deliver innovative and transformative IT solutions. Our clients represent Risk, Finance, HR, CAO, Audit, Legal, Compliance, Financial Crime, Capital Markets, Personal and Commercial Banking and Wealth Management. We also lead the development of digital tools and platforms to enhance collaboration.
We are looking for a MLOps Engineer to help design and build a production-grade machine learning pipeline for financial risk model training and inference. The pipeline will support model training/testing/inference using Python and PySpark, on public cloud (AWS) and on-premises infrastructure.
This role is ideal for an engineer who combines Python programming, system design, and cloud engineering skills with a solid understanding of machine learning model lifecycle management from data preparation through training, validation, registration, and operational inference.
You’ll collaborate closely with data scientists, DevOps, and risk IT teams to build a reliable, automated, and auditable MLOps platform that meets enterprise standards for security, governance, and scalability.
What will you do?
Design and implement end-to-end reusable MLOps pipelines with a team of engineers to train, test, register, and deploy machine learning models
Build and automate model lifecycle management workflows including versioning, promotion, approval, and deprecation.
Develop and integrate a model registry (e.g., MLflow, SageMaker Model Registry, or custom solution) to manage model metadata, lineage, and reproducibility.
Orchestrate data and training workflows using tools such as Airflow, AWS Step Functions, stonebranch, or Prefect.
Implement CI/CD pipelines using GitHub Actions, Jenkins, or AWS CodePipeline, ensuring consistent and automated deployment processes.
Build data preparation and training scripts in Python and PySpark, optimized for performance and scalability on AWS EMR, Cloudera Data Platform, or similar.
Manage model artifacts, dependencies, and environments across AWS and on-premis.
Ensure strong observability and auditability through structured logging, metrics, and model performance tracking.
Collaborate with DevOps and data engineering teams to ensure secure integration, data governance, and production readiness.
What do you need to succeed?
Must Have:
Bachelor’s degree in computer science, engineering, data science, or related quantitative and technical fields.
3+ years of experience in software engineering, data engineering, or MLOps.
1+ year experience working with AWS components
Experience working with containers and infrastructure automation.
Experience working with Linux systems, shell scripting, and environment management.
Knowledge of AWS data and ML services e.g., S3, EMR, Lambda, Step Functions, ECS/EKS, SageMaker, CloudWatch, IAM.
Understanding of model lifecycle management from training and testing to deployment, monitoring, and retraining.
Experience with CI/CD practices, using tools like GitHub Actions, Jenkins, or CodePipeline.
Familiarity with hybrid deployment environments (AWS and on-prem) and related networking/security considerations.
Knowledge of Python scripting for automation and ML workflow integration.
Knowledge of PySpark for distributed data processing and model training.
Nice to Have:
AWS Certified Machine Learning Engineer Associate, or Certified Solution Architect Associate, or CloudOps/SysOps Engineer Associate
AWS Certified Cloud Practitioner - Amazon Web Services
Experience implementing model monitoring and drift detection.
Familiarity with distributed training and parallel compute frameworks (Ray, Spark, Dask).
Experience with feature stores, data lineage, or metadata tracking systems.
Exposure to financial risk modeling workflows.
What’s in it for you?
We thrive on the challenge to be our best, progressive thinking to keep growing, and working together to deliver trusted advice to help our clients thrive and communities prosper. We care about each other, reaching our potential, making a difference to our communities, and achieving success that is mutual.
A comprehensive Total Rewards Program including bonuses and flexible benefits, competitive compensation, commissions, and stock where applicable
Leaders who support your development through coaching and managing opportunities
Ability to make a difference and lasting impact
Work in a dynamic, collaborative, progressive, and high-performing team
A world-class training program in financial services
Flexible work/life balance options
Opportunities to do challenging work
#LI-POST
#TECHPJ
Job Skills
Big Data Management, Data Mining, Data Science, Deep Learning, Machine Learning (ML), Predictive Analytics, Programming LanguagesAdditional Job Details
Address:
745 THURLOW ST:VANCOUVERCity:
VancouverCountry:
CanadaWork hours/week:
37.5Employment Type:
Full timePlatform:
TECHNOLOGY AND OPERATIONSJob Type:
RegularPay Type:
SalariedPosted Date:
2026-07-29Application Deadline:
2026-09-29Note: Applications will be accepted until 11:59 PM on the day prior to the application deadline date above
Our Employment Opportunities
At RBC, we are guided by living shared values of Client First, Integrity, Collaboration, Respect and Excellence and winning together as One RBC. We believe an inclusive workplace that has diverse perspectives is core to our continued growth as one of the largest and most successful banks in the world. Maintaining a workplace where our employees feel supported to perform at their best, effectively collaborate, drive innovation, and grow professionally helps to bring our Purpose to life and create value for our clients and communities. RBC strives to deliver this through policies and programs intended to foster a workplace based on respect, belonging and opportunity for all.
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RBC is presently inviting candidates to apply for this existing vacancy. Applying to this posting allows you to express your interest in this current career opportunity at RBC. Qualified applicants may be contacted to review their resume in more detail.
How we score this
Senior ML Engineer, ML Platform - GFT at RBC scores 14 out of 100 on AI centrality, which makes it AI Level 1 of 4 (Little AI) on this board. The level measures how much of the work is AI, not seniority.
AI Level 1. The work itself involves no AI, or AI only appears as scenery, such as a company tagline.
- AI Level 480 to 100
- AI Level 360 to 79
- AI Level 240 to 59
- AI Level 10 to 39
Bands come from how often the tools, models and workflows of the role are named in the posting itself. Open the description and count.
Prepare for this job
A free preview built only from this posting: what it asks for, what you could be asked in an interview, and how to adjust your resume.
Skills and AI tools this role asks for
Questions you could be asked
- How do you monitor a model once it's live, and how do you know it needs retraining?
- Walk me through how you've used Mlflow in your day-to-day work.
- What are the limits of Sagemaker that you've run into, and how did you work around them?
Adapt your resume
- List these exact terms on your resume: Ml Ops, Mlflow, and Sagemaker. An applicant tracking system matches the wording, not the idea.
- Attach one line of real, concrete experience to at least one of them — a tool named with nothing behind it rarely survives a human read.
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