Role Overview
Royal Bank of Canada is hiring a Senior ML/AI Engineer. This is a full-time role in Toronto. Part of Royal Bank of Canada's Fullstack hiring, posted 2 days ago. Full responsibilities, required qualifications, and the apply link are listed in the description below.
Salary Context
Salary is not disclosed in this posting. Market median for Senior-level Fullstack roles is $150k-$189k (based on 31 comparable listings). Many employers share specifics during the interview process or after an initial screen.
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Job description
Job Description
WHAT IS THE OPPORTUNITY?
RBC Technology Infrastructure seeks a full stack AI Engineer to explore and operationalize big data sources to reduce outage and down time for RBC services that leads to improve user experience and save costs. Seeking AI Eng with experience in applied research and problem solving to join our team. The successful candidate will have experience with developing and deploying production grade AI/ML solutions, have broad expertise in statistics, analytics, ML and strong programming skill. Join our team at the forefront of technological advancement, where you'll develop applications such as autonomous AI agents that leverage and fine-tune large language models (LLMs) and other deep learning models. As an AI Engineer, you will play a pivotal role in building intelligent systems that transform the way we operate and deliver value.
WHAT WILL YOU DO?
- Design and Develop AI Applications, Create and deploy autonomous AI agents utilizing LLMs and deep learning models. Fine-tune and customize pre-trained models (e.g., GPT-4, BERT, Llama, Qwen) for specific use cases.
- Implement Machine Learning Algorithms. Develop and optimize algorithms for natural language processing, computer vision, and other AI domains. Apply transfer learning and reinforcement learning techniques to enhance model performance.
- Collaborate Across Teams. Work closely with cross-functional teams to integrate AI solutions into existing products and services. Participate in code reviews, design discussions, and team meetings to foster a collaborative environment.
- Operational Excellence. Ensure the scalability, reliability, and security of AI models and systems. Monitor and analyze system performance, addressing any issues proactively.
- Continuous Learning and Innovation. Stay current with the latest advancements in AI and machine learning. Experiment with new technologies and methodologies to improve existing solutions.
- Mentorship and Knowledge Sharing. Provide guidance and training to team members on AI technologies and best practices. Document processes, design patterns, and technical implementations for future reference.
- Lead full life-cycle Data Science solutions from beginning to model deployment and monitoring and partner with the engineering team to ensure best practices for ML model deployment.
- Apply knowledge of statistics, machine learning, programming, data modeling, simulation, and advanced mathematics to recognize patterns, identify opportunities, pose business questions, and make valuable discoveries leading to prototype development and product improvement.
- Experience in (Python, Apache Spark, PySpark, R, Scala, SQL, NoSQL, etc.) to obtain, integrate, manipulate, and analyze data from multiple sources.
- Expertise in statistical data analysis (e.g. univariate/bivariate analysis) and data quality assessment.
- Build Machine Learning, Deep Learning and statistical models to solve specific business problems.
- Developing predictive data models, anomaly detection model, quantitative analyses and visualization of targeted big data sources.
- Leading data exploration and analytic projects and providing on-going coaching of big data topics (visualization, data mining, analytic techniques).
- Exploring and implementing semantic data capabilities through NLP, text mining and machine learning techniques.
- Overseeing the acquisitions and ingestions of data from structured and unstructured sources, while ensuring quality and comprehensiveness of data.
- Utilizing APIs to collect data from various products into the Data Warehouse Database.
WHAT DO YOU NEED TO SUCCEED?
Must have:
- 2+ years of industry experience required working on real-world problems
- Master or Ph.D. degree in an analytical field of study (e.g. Computer Science, Engineering, Mathematics, Statistics, or related quantitative field).
- Experienced with AI/ML infrastructure and model deployment for Gen AI applications in production environments and supporting enterprise-scale use cases
- Software Development Experience:
- Experience in software development with proficiency in Python, Java, or C++.
- Strong understanding of software engineering principles and practices.
- Machine Learning Expertise:
- Hands-on experience with deep learning frameworks such as TensorFlow or PyTorch.
- Knowledge of natural language processing techniques and LLMs.
- Model Development and Deployment:
- Experience in training, fine-tuning, and deploying machine learning models.
- Familiarity with cloud platforms (e.g., AWS, GCP, Azure) for model deployment.
- Data Handling Skills:
- Proficient in data preprocessing, feature engineering, and working with large datasets.
- Understanding of data privacy and security considerations.
- Strong foundation in ML and AI basics, knowledge of Inferencing, fine-tuning, model architectures, Embeddings. Hands-on experience implementing solutions using modern ML and Deep Learning frameworks, such as PyTorch, TensorFlow, Scikit-Learn, or Hugging Face Transformers
- Hands-on experience designing graph data models and working with graph databases (Neo4j, Amazon Neptune, TigerGraph) and/or knowledge graph frameworks (RDF/OWL, property graphs, SPARKQL)
- Familiar with software engineering industry best practices, including coding standards, testing methods, code reviews, and version control
- Experience working with technical and non-technical project stakeholders to scope, formulate, deploy, and maintain data science systems.
- Self-driven problem solver, able to adapt and thrive in a dynamic, ambiguous, and customer-faced environment.
- Excellent communication skills to articulate complex concepts to technical and non-technical stakeholders.Ability to prioritize work and manage multiple work streams concurrently.
- In-depth knowledge in machine learning and deep learning algorithms.
- Excellent working with structured and non-structured data.
- Excellent knowledge in Python, PySpark, SQL. Familiarity with GIT (GitHub)
- Experience with cloud-based data platforms such as Azure or AWS. Experience with data visualization tools such as Tableau, Looker, and Power BI.
Nice-to-have:
- Experience architecting large scale ML systems.
- Experience working knowledge of Reinforcement learning (DynaQ/Q+, SARSA, TD, Monte Carlo).
- Knowledge in AIOps domain.
- Knowledge of IT Operation Monitoring Tools (Dynatrace, Moog, GEM, Pager Duty, etc )
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
- Opportunities to do challenging work
- Opportunities to take on progressively greater accountabilities
- Opportunities to building close relationships with clients
- Access to a variety of job opportunities across business and geographies.
#LI-Post
#TECHPJ
Job Skills
Actuarial Modeling, Big Data Management, Commercial Acumen, Data Mining, Data Science, Decision Making, Machine Learning (ML), Natural Language Processing (NLP), Predictive Analytics, Python (Programming Language)
Additional Job Details
Address:
RBC CENTRE, 155 WELLINGTON ST W:TORONTO
City:
Toronto
Country:
Canada
Work hours/week:
37.5
Employment Type:
Full time
Platform:
TECHNOLOGY AND OPERATIONS
Job Type:
Regular
Pay Type:
Salaried
Posted Date:
2026-07-15
Application Deadline:
2026-07-31
Note: 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.
About Royal Bank of Canada
Royal Bank of Canada
rbc.com
63 other open roles at Royal Bank of Canada on TryApplyNow.
Frequently Asked Questions
How do I apply for the Senior ML/AI Engineer position at Royal Bank of Canada?
Use the Apply button above to submit your application directly to Royal Bank of Canada. Most applications take less than 5 minutes if your resume and contact details are ready, and you'll be routed to the employer's official application system to finish.
Where is the Senior ML/AI Engineer position at Royal Bank of Canada located?
This position is based in Toronto. Royal Bank of Canada has not indicated remote or hybrid options for this role, so candidates should plan for on-site work.
What does a Senior ML/AI Engineer at Royal Bank of Canada earn?
Royal Bank of Canada has not disclosed a salary range in this posting. Many employers share specifics later in the interview process; you can also ask during a recruiter screen if compensation transparency is important to you.
When was the Senior ML/AI Engineer role at Royal Bank of Canada posted?
This role was posted on July 16, 2026 (2 days ago). It's still listed as actively hiring; we re-confirm openings against the source system multiple times per day and remove closed roles.
How much experience does the Senior ML/AI Engineer role at Royal Bank of Canada require?
This is a senior-level position. Most senior roles call for 5+ years of directly relevant experience. Royal Bank of Canada lists their specific requirements in the description below, so review the must-have qualifications closely before applying.
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