Machine Learning Engineer
Job in
Toronto, Ontario, C6A, Canada
Listed on 2026-06-16
Listing for:
United States Digital Space LLC
Full Time
position Listed on 2026-06-16
Job specializations:
-
Software Development
Machine Learning/ ML Engineer, AI Engineer (Applied/Software), Data Scientist
Job Description & How to Apply Below
Machine Learning Engineer – Emerging Technology
The company’s Emerging Technology team is seeking a Machine Learning Engineer to join a team focused on building and supporting Generative AI, Machine Learning (ML), and Data Science solutions across the organization. This position could be based in our Chicago or Toronto offices.
Objectives
Implement AI & ML technology in collaboration with business partners and product owners
Develop and support enterprise‑level AI exploration tools and capabilities
Provide guidance and support for safe development and deployment of AI
Establish and maintain policies, guidelines, and processes for AI/ML governance, including third‑party AI governance
Responsibilities
Work closely with product squads and partner teams to design, build, integrate, and deploy ML and GenAI solutions in production, while sharing best practices with other engineers.
Communicate ML and GenAI concepts clearly to technical and non‑technical stakeholders, with a focus on practical application to use cases.
Collaborate with engineers, data scientists, and product partners to develop and deploy ML and GenAI solutions that deliver measurable business value.
Partner with data scientists and domain experts to identify practical opportunities where data, ML, and GenAI can improve business outcomes.
Build scalable services, pipelines, and workflows for ML and GenAI use cases, with guidance from senior engineers where needed.
Support production applications by helping maintain reliability, monitoring performance, and using metrics to improve existing ML solutions.
Use cloud services, primarily in AWS, to support data pipelines, model deployment, and LLM‑based workflows. Familiarity with Azure services is a plus.
Use Python and large‑scale workflow orchestration tools (for example, Airflow) to build production‑quality services, data pipelines, and integrations across diverse data sources and storage systems.
Qualifications
3+ years of experience as a machine learning engineer or in a closely related software engineering role focused on ML systems.
Experience writing production‑quality Python code and applying sound software engineering practices.
Strong foundation in machine learning concepts and practical experience applying modern ML techniques to real‑world problems.
Strong software engineering fundamentals, including code quality, automated testing, version control, observability, and performance optimization.
Experience building or integrating Generative AI applications, such as retrieval‑augmented generation, evaluation workflows, or agent‑assisted systems.
Experience building or improving search, retrieval, or data access layers that support ML or GenAI applications.
Experience with containerized deployment and orchestration, such as Docker and Kubernetes.
Experience with cloud‑native ML and data services, especially in AWS. Familiarity with tools such as Bedrock, S3, Sage Maker, Azure AI Search, or Azure OpenAI is helpful.
Bachelor’s degree in computer science, machine learning, data science, applied mathematics, or a related field, or equivalent practical experience.
What Would Make You Stand Out
Passion for using data and ML to drive better business outcomes for customers
Proven ability to work effectively in a distributed team environment and contribute in fast‑paced settings.
Familiarity with credit ratings agencies, regulations, and data products
Excellent written and verbal communication skills
Advocate of good code quality and architectural practices
Strong interpersonal skills and ability to work proactively as a team player
Compensation (Toronto)
Expected base pay rates for the role will be between $100,000 and $130,000 CAD per year. Actual salaries will be determined on an individualized basis and may vary based on factors including but not limited to education, training, experience, past performance, and other job‑related factors. Base pay is one part of the company’s total compensation package, which, depending on the position, may also include commission earnings, discretionary bonuses, long‑term incentives, and other benefits sponsored by the company.
EEO Statement
The company is proud to be an Equal Opportunity and Affidavit of Good Faith Employer. We evaluate qualified applicants without regard to race, color, national origin, religion, sex, sexual orientation, gender identity, disability, protected veteran status, and other statuses protected by law.
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