Manager, Data Engineering - CAN
Kinaxis
About Kinaxis
Are you looking to join an innovative, market-leading company where you can truly elevate your career? At Kinaxis we are serious about culture, we are serious about technology, we are serious about customers, and we are serious about not taking ourselves too seriously. If you are looking to be part of an incredible growth story, then we might just be the place for you!
In 1984, we started out as a team of three engineers. Today, we have grown to become a global organization with over 2000 employees around the world, 6 global office and a best-in-class HQ in Ottawa, Canada. As winners of several Top Employer awards globally, we are proud to work with our customers and employees towards solving some of the biggest challenges facing supply chains today.
Kinaxis is a global leader in modern supply chain orchestration, powering complex global supply chains, and supporting the people who manage them. Our powerful, AI infused platform provides full transparency and visibility across end-to-end supply chains, enabling our customers to make faster, better decisions. We are trusted by renowned global brands to provide the agility and predictability needed to navigate today’s volatility and disruption. With more than 40,000 users in over 100 countries, we are expanding our team as we continue to innovate and revolutionize how we support our customers.
Location
- Ottawa and Toronto, Canada - Hybrid (Preferred)
- Other Canadian locations - Remote
About The Team
The Data & Analytics organization drives Kinaxis’ transformation into a data-driven organization by building trusted, scalable, and modern data capabilities that power analytics, AI enablement, customer-facing data products, cloud intelligence, and operational decision-making.
The Data & Observability Platform team is responsible for the shared technical foundations that enable the broader Data & Analytics organization to deliver quickly and reliably. This includes ingestion frameworks, Databricks and dbt platform enablement, CI/CD and deployment patterns, data and cloud observability, modernization of legacy platforms, and reusable standards that allow teams to safely build and operate data solutions at scale.
This team partners closely with Data Architecture, Analytics & AI Enablement, Data Products & Integrations, FinOps, SRE, Cloud Platform Engineering, and business stakeholders across Kinaxis.
Vacancy Status
This is an existing job vacancy
What you will do
We are seeking an experienced and hands-on engineering manager to lead the Data & Observability Platform team. This role will be responsible for building and operating the shared platform capabilities, frameworks, and observability foundations that support Kinaxis’ modern data ecosystem.
You will lead a team focused on improving engineering velocity, reducing delivery friction, enabling consistent platform patterns, and modernizing legacy data technologies. Your team will provide the foundation that allows other Data & Analytics teams to ingest, transform, monitor, and operate data products and analytics solutions reliably.
Success in this role will require strong technical leadership, operational discipline, stakeholder partnership, and the ability to balance platform maturity with pragmatic delivery. You will help the organization move faster by creating reusable frameworks, clear standards, and reliable platform capabilities.
Key responsibilities Leadership & Team Management
- Lead, mentor, and manage a team of data platform engineers, and observability engineers.
- Build a high-performing engineering culture focused on reliability, delivery speed, automation, and continuous improvement.
- Define team objectives, delivery priorities, and measurable outcomes aligned with Data & Analytics and Cloud Services goals.
- Coach team members on engineering practices, operational ownership, platform thinking, and stakeholder partnership.
- Partner with other Data & Analytics leaders to ensure platform work is aligned to business and product priorities.
- Foster collaboration, knowledge sharing, and strong engineering discipline across the Data & Analytics organization.
Data Platform & Engineering Foundations
- Own and evolve reusable ingestion frameworks, templates, and patterns for onboarding data into the modern data platform.
- Build and operate platform capabilities that support business analytics, AI enablement, product analytics, customer-facing data products, and integrations.
- Own Databricks and dbt platform enablement patterns, including environment standards, deployment workflows, testing approaches, and operational practices.
- Establish scalable patterns for service accounts, permissions, secrets, logging, monitoring, and deployment automation.
- Partner with Data Architecture to ensure platform patterns align with enterprise standards, security expectations, and long-term architectural direction.
- Enable other teams to ingest and operate data safely using approved frameworks and standards.
Observability Engineering
- Lead the delivery and ongoing operation of data observability and cloud observability platform capabilities for the Data & Analytics and the broader Cloud Services organization.
- Build and operate telemetry , monitoring, alerting, and reliability patterns for data pipelines, platform services, and cloud-facing workloads.
- Support observability needs for all data products and cloud infrastructure hosting Kinaxis’ flagship Maestro offering.
- Establish standards for pipeline health, data freshness, failure handling, operational dashboards, and incident response.
Modernization & Legacy Retirement
- Lead modernization of legacy data platforms, pipelines, and operational tooling into target-state GCP, Databricks, dbt, and cloud-native patterns.
- Lead the migration and retirement strategy for legacy technologies such as Informatica, Snowflake, Airflow, Postgres, Grafana, and Power BI Dataflows where applicable.
- Ensure migration work is delivered incrementally, safely, and with clear business continuity plans.
- Reduce technology fragmentation by creating repeatable patterns and minimizing one-off solutions.
- Partner with consuming teams to prioritize modernization work based on risk, business value, operational burden, and renewal timelines.
Platform Enablement & Engineering Velocity
- Improve developer experience for Data & Analytics teams through reusable frameworks, CI/CD automation, testing patterns, documentation, and self-service capabilities.
- Reduce dependency on manual cloud changes and external platform approvals by partnering with SRE and Cloud Platform Engineering on approved automation patterns.
- Establish practical standards for analytics-as-code, infrastructure-as-code, testing, deployment, and operational readiness.
- Identify bottlenecks in delivery flow and implement platform capabilities that reduce cycle time and rework.
- Promote a “thin vertical slice first, harden and scale after” delivery mindset where appropriate.
Stakeholder Engagement & Cross-Functional Partnership
- Act as the primary platform partner for Analytics & AI Enablement, Data Products & Integrations, Data Architecture, SRE, and Cloud Platform Engineering.
- Translate platform needs, risks, and dependencies into clear plans and trade-offs for technical and non-technical stakeholders.
- Communicate progress, risks, and modernization outcomes clearly to leadership.
- Support architecture review processes by ensuring new patterns are reviewed early and implemented consistently.
- Build strong relationships with teams that depend on the data platform for business analytics, customer-facing insights, integrations, FinOps, observability, and AI enablement.
Technologies we use
- Cloud & Platform: Google Cloud Platform, Microsoft Azure, Databricks
- Data Engineering & Modeling: Python, SQL, dbt
- Data Stores: BigQuery, Snowflake, Postgres, SQL Server, Databricks
- BI & Analytics Consumers: Power BI, Looker
- Orchestration & CI/CD: GitHub Actions, Airflow, CI/CD pipelines
- Observability: Datadog, Grafana, Logstash, cloud telemetry platforms
- Infrastructure Automation: Terraform, Ansible
- Development Tools: Visual Studio Code, Git, Bitbucket/Stash, Jira, Confluence
- Integration Development: GCP-native Python-based integration pattern
What we are looking for
- Bachelor’s degree in Computer Science, Engineering, Information Systems, or a related field. A Master’s degree is a plus.
- 5+ years of experience in data engineering, platform engineering, software engineering, cloud engineering, or related roles.
- 3+ years of experience leading or managing technical teams in a fast-paced technology environment.
- Strong experience with modern cloud data platforms, preferably including Databricks, dbt, GCP, BigQuery, Snowflake, or similar technologies.
- Strong understanding of data ingestion, data modeling, orchestration, CI/CD, data quality, and production operations.
- Experience building reusable engineering frameworks, platform patterns, and developer enablement capabilities.
- Strong understanding of observability practices, including monitoring, alerting, logging, telemetry, incident response, and operational reliability.
- Experience modernizing or migrating legacy data platforms, ETL tools, pipelines, or reporting infrastructure.
- Strong software engineering fundamentals, including version control, automated testing, deployment automation, and code review practices.
- Ability to partner effectively with architects, product teams, analytics teams, SRE, Cloud Platform Engineering, and business stakeholders.
- Strong communication skills with the ability to explain technical trade-offs, risks, and delivery options to leadership.
- Experience in SaaS, enterprise software, or cloud-native environments is preferred.
- Experience with FinOps and/or cloud cost data is an asset.
- Experience with Python, SQL, dbt, Databricks, and GCP is strongly preferred.
Success in this role looks like
- Data & Analytics teams can onboard new data sources faster using approved ingestion frameworks.
- Databricks, dbt, and deployment patterns become more standardized and easier to use.
- Legacy platform retirement progresses against agreed timelines.
- Data and cloud observability capabilities improve operational reliability.
- Platform incidents are easier to detect, diagnose, and resolve.
- Delivery teams experience less friction from permissions, environments, CI/CD, and platform dependencies.
- Architecture standards are implemented consistently without slowing delivery.
- Stakeholders see faster, more reliable delivery of analytics, AI, data product, and integration capabilities.
#Manager
Work With Impact: Our platform directly helps companies power the world’s supply chains. We see the results of what we do out in the world every day, when we see store shelves stocked, when medications are available for our loved ones, and so much more.
Work with Fortune 500 Brands: Companies across industries trust us to help them take control of their integrated business planning and digital supply chain. Some of our customers include Lockheed Martin, Unilever, P&G, ExxonMobil, Cisco and more.
Social Responsibility at Kinaxis: Our Diversity, Equity, and Inclusion Committee weighs in on hiring practices, talent assessment training materials, and mandatory training on unconscious bias and inclusion fundamentals. Sustainability is key to what we do and we’re committed to a long-term net-zero operations strategy. We are involved in our communities and support causes where we can make the most impact.
People matter at Kinaxis and here are some of the perks and benefits we offer, which may vary by location and employee:
- Flexible vacation and Kinaxis Days (company-wide days off)
- Flexible work options
- Physical and mental well-being programs
- Regularly scheduled virtual fitness classes
- Mentorship programs, training, and career development
- Recognition programs and referral rewards
- Hackathons
For more information, visit the Kinaxis website at or the company’s blog at .
Kinaxis welcomes candidates to apply to our inclusive community. We provide accommodations upon request to ensure fairness and accessibility throughout our recruitment process for all candidates, including those with specific needs or disabilities. If you require an accommodation, please reach out to us at View email address on ca.workus.org. This contact information is for accessibility requests only and cannot be used to inquire about the status of applications.
Kinaxis is committed to ensuring a fair and transparent recruitment process. We use artificial intelligence (AI) tools in the initial step of the recruitment process to compare submitted resumes against the job description to identify candidates whose education, experience, and skills most closely match the requirements of the role. After the initial screening, all subsequent decisions regarding your application, including final selection, are made by our human recruitment team. AI does not make any final hiring decisions.
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