Jobs
Benefits & Perks
•Equity
•Flexible Hours
•Remote Work
•Equity
•Flexible Hours
•Remote Work
Required Skills
SQL
dbt
Data Warehousing
Dimensional Modeling
GitHub
CI/CD
Your work days are brighter here.
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.
About the Team
Workday has launched an Enterprise Data and Analytics (ED&A) Team to Transform and optimize the way Workday creates and shares trusted data to drive actionable insights and data led innovation across the enterprise. To enable this strategy, the ED&A team has worked with the business to identify critical business areas in which data and analytics can make a material difference in the execution of Workday’s strategic goals. Each of these goals is being organized as a data product with a dedicated multi-functional team to drive a diverse set of data management, governance, and data analytics to realize relevant, measurable business change.
As part of ED&A and enabling this strategy, the Analytics Engineering team is at the forefront of transforming data into reliable and insightful assets. We are responsible for building scalable data products, ensuring data quality and governance through version control, and creating best practices for the organization. The team also operates at the intersection of Product, Engineering, and Business Operation, owning the transformation layer of our modern data stack (Snowflake, dbt).
About the Role
We are seeking a Principal Analytics Engineer with skills in data product development, pipeline management, data modeling, data transformation, and data analytics to support enterprise analytics and AI initiatives. The Principal Analytics Engineer's role moves beyond execution to focus on architectural governance, acting as the dbt expert to define and enforce data product development best practices for scalability and cost-efficiency. This role requires a passion for coaching junior engineers, providing deep technical mentorship to foster a culture of engineering rigor and elevate team performance. You will need to master the complex organizational dynamics inherent in cross-functional projects, acting as the key technical liaison to build consensus and drive the adoption of unified enterprise metrics. Ultimately, you will be responsible for defining the strategy for foundational data projects, ensuring all business teams have access to optimized, efficient and trusted data products.
Job Responsibilities:
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Architect, design, and lead the build-out of end-to-end performant, reliable, and scalable data pipelines and the transformation layer.
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Act as the dbt subject matter expert, defining and championing data modeling standards and best practices across the organization while managing the full lifecycle of complex dimensional models and metrics from prototyping to production.
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Partner cross-functionally with Product Owners, Data Analysts, and business leaders (Sales, Marketing, Finance) to scope and deliver high-impact analytics initiatives, ensuring analytics requirements are clearly understood and effectively implemented.
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Operate as a highly independent individual contributor, solving complex, ambiguous problems and delivering high-quality, architecturally sound solutions with minimal oversight and a high degree of ownership over critical data domains.
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Mentor, guide, and coach junior and mid-level engineers to deliver complex and next-generation features, actively instilling a culture of software engineering rigor, code quality, best practice, standards, and technical excellence within the team.
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Master the dynamics of high-stakes projects, expertly navigating stakeholder and internal complexities to align business needs with technical feasibility and secure consensus on enterprise-wide metric definitions.
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Design and build database architectures to handle massive and complex data volumes, skillfully balancing computational load, query latency, and data warehouse cost efficiency, integrating strong data quality audits and testing frameworks at scale to ensure resilience.
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Boost overall data team productivity by proactively identifying technical debt, improving tooling, automating complex workflows, and streamlining processes for transformation and deployment.
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Bring a customer-centric, product-oriented mindset to the table, collaborating with external and internal stakeholders to resolve ambiguities and ensure shipped data features are impactful, reliable, and align with business outcomes.
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Build and maintain user friendly documentation for data models, data processes, workflows, and systems for transparency and knowledge sharing.
About You Basic Qualifications:
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7 years of professional experience in an Analytics Engineering or Data Engineering role, preferably within a SaaS or high-tech environment.
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7 years of professional experience in SQL and strong production experience with a major cloud data warehouse (Snowflake, BigQuery, Redshift).
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Extensive experience with DBT, including advanced features (macros, packages, source freshness, custom tests).
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Strong familiarity with version control (GitHub), CI/CD, and modern development workflows.
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Strong understanding of data warehousing concepts and dimensional modeling
Other Qualifications:
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Experience in a technical coaching or mentoring role with demonstrable impact on junior engineers' development.
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Demonstrated ability to manage requirements and expectations across multiple, competing business units.
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Strong communicator who can build trusted partnerships across GTM, Finance, and Exec stakeholders.
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Experience with a major orchestration tool and defining complex data dependencies.
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Deep functional knowledge of core SaaS business domains (e.g., Salesforce/CRM data, Product telemetry, Financial modeling).
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Proficiency in Python for scripting, data manipulation, and pipeline orchestration.
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Bias for action - you prefer launching usable, iterative data models that deliver immediate value over waiting for perfect solutions.
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Comfortable working through ambiguity in fast-moving, cross-functional environments.
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Familiarity with data governance tools, data catalogs, and data observability solutions.
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Bachelor’s degree in Computer Science, Engineering, or quantitative field. Master's or Ph.D. degree preferred.
Workday Pay Transparency Statement
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.ON.Toronto
Primary CAN Base Pay Range: $141,100 - $211,700 CAD
Additional CAN Location(s) Base Pay Range: $141,100 - $211,700 CAD
Our Approach to Flexible Work
With Flex Work, we’re combining the best of both worlds: in-person time and remote. Our approach enables our teams to deepen connections, maintain a strong community, and do their best work. We know that flexibility can take shape in many ways, so rather than a number of required days in-office each week, we simply spend at least half (50%) of our time each quarter in the office or in the field with our customers, prospects, and partners (depending on role). This means you'll have the freedom to create a flexible schedule that caters to your business, team, and personal needs, while being intentional to make the most of time spent together. Those in our remote home office roles also have the opportunity to come together in our offices for important moments that matter.
Pursuant to applicable Fair Chance law, Workday will consider for employment qualified applicants with arrest and conviction records.
Workday is an Equal Opportunity Employer including individuals with disabilities and protected veterans.
At Workday, we are committed to providing an accessible and inclusive hiring experience where all candidates can fully demonstrate their skills. If you require assistance or an accommodation at any point, please email accommodationsworkday.com.
Are you being referred to one of our roles? If so, ask your connection at Workday about our Employee Referral process!
At Workday, we value our candidates’ privacy and data security. Workday will never ask candidates to apply to jobs through websites that are not Workday Careers.
Please be aware of sites that may ask for you to input your data in connection with a job posting that appears to be from Workday but is not.
In addition, Workday will never ask candidates to pay a recruiting fee, or pay for consulting or coaching services, in order to apply for a job at Workday.
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About Workday

Workday
PublicWorkday, Inc., is an American on‑demand (cloud-based) financial management, human capital management, and student information system software vendor.
10,001+
Employees
Pleasanton
Headquarters
Reviews
2.6
15 reviews
Work Life Balance
3.0
Compensation
4.0
Culture
2.5
Career
2.8
Management
2.2
25%
Recommend to a Friend
Pros
Competitive compensation packages
Principal/senior level opportunities available
AI/technology focus areas
Cons
Major layoffs (8.5% workforce reduction)
Age discrimination lawsuit regarding AI hiring tools
Proprietary Xpresso language is difficult and non-transferable
Salary Ranges
2 data points
Junior/L3
Senior/L5
Staff/L6
Junior/L3 · Data Scientist P2
0 reports
$130,000
total / year
Base
-
Stock
-
Bonus
-
$110,500
$149,500
Interview Experience
9 interviews
Difficulty
3.9
/ 5
Duration
14-28 weeks
Experience
Positive 11%
Neutral 11%
Negative 78%
Interview Process
1
Application Review
2
Recruiter Screen
3
Hiring Manager Interview
4
Director Interview
5
Team Interviews
6
Offer Decision
Common Questions
Behavioral/STAR
Past Experience
Culture Fit
Technical Knowledge
Management/Leadership
News & Buzz
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