~1h ago
New

Machine Learning Engineer - Financials

CanadaCanada·Vancouvermid
Machine Learning EngineerData
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Quick Summary

Key Responsibilities

Own exploration, design, implementation, and deployment of features. The evaluation, scalability, and observability of these features. Apply ML techniques,

Requirements Summary

5+ years experience as a member of a data science, machine learning engineering, or other relevant software development team building applied machine learning products at scale,

Technical Tools
Machine Learning EngineerData

We’re obsessed with making hard work pay off, for our people, our customers, and the world around us. As a Fortune 500 company and a leading AI platform for managing people, money, and agents, we’re shaping the future of work so teams can reach their potential and focus on what matters most. The minute you join, you’ll feel it. Not just in the products we build, but in how we show up for each other. Our culture is rooted in integrity, empathy, and shared enthusiasm. We’re in this together, tackling big challenges with bold ideas and genuine care. We look for curious minds and courageous collaborators who bring sun-drenched optimism and drive. Whether you're building smarter solutions, supporting customers, or creating a space where everyone belongs, you’ll do meaningful work with Workmates who’ve got your back. In return, we’ll give you the trust to take risks, the tools to grow, the skills to develop and the support of a company invested in you for the long haul. So, if you want to inspire a brighter work day for everyone, including yourself, you’ve found a match in Workday, and we hope to be a match for you too.

Do you want to be part of the team which is reinventing Enterprise Financials for the agentic age? The Financials Hyper Automation AI team is a small, advanced team of ML engineers charged with re-envisioning and building the next generation of ERP Financial and Accounting systems. We have an entrepreneurial mindset with a focus on creating delightful, intelligent experiences, leveraging the state-of-the-art in AI as well as strong, proven techniques from conventional machine learning. Working closely with product managers, we build advanced prototypes as well as deploy full production-grade features to solve our customer’s most pressing business challenges. Our current areas of development include strong reasoning agents for complex financial workflows and agentic self-improvement.

About the Role

~1 min read

As a ML Engineer on the FIN Hyperautomation AI team, you will develop intelligent user experiences powered by advanced tools like (but not limited to) generative AI. You will work with other engineers to deliver ML solutions across Workday’s ML infrastructure, from training ML models to developing APIs, as well as managing the lifecycle of such products and services. You will be backed by Workday’s vast computing resources and rich datasets, to deliver transformative value to our customers.
 

Responsibilities

~1 min read
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    Own exploration, design, implementation, and deployment of features.

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    The evaluation, scalability, and observability of these features.

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    Apply ML techniques, including LLMs and natural language understanding, to intelligently process business documents and, for example, automate critical customer workflows.

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    Stay up to date with advancements in AI, LLMs, RAG, autonomous agents and orchestration frameworks to drive innovation.

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    Serve as a technical role model for more junior engineers

Sound like your kind of challenge?

Requirements

~1 min read
  • 5+ years experience as a member of a data science, machine learning engineering, or other relevant software development team building applied machine learning products at scale, including taking products through applied research, design, implementation, production, and production-based evaluation.

  • 5+ years of professional experience with Python and supporting numeric libraries, with experience in shipping production code and models

  • 5+ years of professional experience with cloud computing platforms (e.g. AWS, GCP, etc.)

  • Bachelor’s (Master’s or PhD preferred) degree in engineering, data/computer science, physics, math or equivalent.

  • 5+ years of professional experience in building information retrieval systems 

  • 5+ years of professional experience building scalable, production-level ML services on platforms such as Kubernetes.

  • 5+ years of professional experience in ML and deep learning frameworks & toolkits, such as scikit-learn, Pandas, PySpark, Pytorch, TensorFlow.

  • 3+ years of professional experience in developing with LLMs, RAG, and AI agents.

  • Strong understanding of statistical analysis, ML paradigms and algorithms, and natural language processing, with a focus for information retrieval and/or recommendation system use cases.

  • Professional experience in independently solving ambiguous, open-ended problems and technically leading a team.

The annualized base salary ranges for the primary location and any additional locations are listed below.  Workday pay ranges vary based on work location. As a part of the total compensation package, this role may be eligible for the Workday Bonus Plan or a role-specific commission/bonus, as well as annual refresh stock grants. Recruiters can share more detail during the hiring process. Each candidate’s compensation offer will be based on multiple factors including, but not limited to, geography, experience, skills, job duties, and business need, among other things. For more information regarding Workday’s comprehensive benefits, please click here.

Primary Location: CAN.BC.Vancouver

Primary CAN Base Pay Range: $128,000 - $192,000 CAD

Additional CAN Location(s) Base Pay Range: $128,000 - $192,000 CAD

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Location & Eligibility

Where is the job
Vancouver, Canada
On-site at the office
Who can apply
CA

Listing Details

First seen
October 11, 2026
Last seen
October 11, 2026

Posting Health

Days active
0
Repost count
0
Trust Level
51%
Scored at
October 11, 2026

Signal breakdown

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Machine Learning Engineer - Financials