Senior Data Platform Engineer
- Montréal, QC
- On-site
- Posted Sep 9, 2026
- 1 position
Opens an external site
- Employment type
- Full-time
- Experience level
- Senior · 5+ years
- Minimum education
- Bachelor’s degree
- Posting language
- English
- Working hours
- 40 hours per week
Job summary
You will architect and scale automated, petabyte-scale data processing pipelines to support frontier AI model research. This involves optimizing compute resources, ensuring data reliability, and maintaining full traceability of datasets.
Job details
We are seeking a visionary and highly technical Senior Data Platform Engineer to architect, implement, scale, and maintain the data engine powering our next-generation frontier models. In this high-impact role, you will bridge the gap between cutting-edge AI research and high-performance engineering, treating the data platform as an internal product with our researchers as your primary customers. You will be responsible for building automated, petabyte-scale data processing pipelines and for guaranteeing that everything they produce is efficient, reliable, and fully traceable. Our technical environment is not fixed and will evolve as our projects scale. We expect someone capable of evolving it, not only following industry trends, challenging it, and making sustainable decisions in close collaboration with our Research and Product teams. The title of Engineer is used for reference purposes and may or may not be the official title of the applicant based on jurisdiction. KEY RESPONSIBILITIES * Scale and automate the data processing stack to handle petabytes of data and ensure its smooth operation. * Design the execution layer for pipeline stages of differing computational shape, matching each stage to an appropriate engine and keeping the pipeline saturated end to end. * Ensure efficient use of compute resources, including GPU access for compute-intensive data processing tasks. * Make pipelines reliable at scale, with graceful failure recovery, restartability, and observability that attributes bottlenecks and cost to the responsible stage. * Ensure all datasets, including the intermediate outputs of each transformation stage, are versioned, reproducible, and fully traceable to meet specific and dynamic experiment needs, and are accompanied by datasheets, in accordance with internal Data Governance policies. * Partner with the Research team to ensure the datasets you produce integrate seamlessly with the training pipelines. SKILLS AND QUALIFICATIONS * A bachelor's degree in a relevant field (e.g., computer science, computer engineering, software engineering) is required. * 5+ years of experience designing, implementing, and managing large-scale distributed data processing systems, or working within large-scale distributed ML data frameworks, with recent experience using e.g. Ray, Apache Spark, workflow orchestrators, Apache Arrow, and/or Parquet. * Demonstrated ownership of a data processing system under real throughput, reliability, and cost pressure. The specific frameworks matter less to us than evidence that you have had to reason about where a large pipeline breaks and why. * Experience profiling and optimizing throughput and cost across heterogeneous workloads, including GPU-accelerated stages. * Experience with dataset versioning, lineage, and reproducibility tooling. * Ability to collaborate effectively with cross-functional teams, document best practices, and stay updated with the latest advancements in large-scale data processing and software development. * Experience with workload managers (e.g., Ray, Kubernetes, Slurm). * Familiarity with containerization tools (e.g., Docker, Enroot). * Familiarity with data infrastructures and platforms (e.g., vector databases). WHAT WE OFFER * The chance to contribute meaningfully to a globally critical initiative. * Comprehensive health benefits (including mental health and wellness management account). * 20 days of vacation per year upon start. * Employer contribution of 4% to your retirement savings, with no required employee match. * Additional compensation totalling 8% of your salary to apply towards additional retirement savings or bonuses (independent of group and individual performance). * A team of passionate world-class experts in their field. * A collaborative and inclusive work environment in our vibrant office space in the heart of Little Italy, in the trendy Mile-Ex district, close to public transportation. About LawZero LawZero is a non-profit organization committed to advancing research and creating technical solutions that enable safe-by-design AI systems. Its scientific direction is based on new research and methods proposed by Professor Yoshua Bengio, the most cited AI researcher in the world. Based in Montreal, LawZero’s research aims to build non-agentic AI that learns primarily to understand the world rather than to act in it, giving truthful answers to questions based on transparent and externalized probabilistic reasoning. Such AI systems could be used to accelerate scientific discovery, to provide oversight for agentic AI systems, and to advance the understanding of AI risks and how to avoid them. LawZero believes that AI should be cultivated as a global public good—developed and used safely towards human flourishing. For more information, visit www.lawzero.org [https://www.lawzero.org/] You belong here At LawZero, diversity is important to us. We value a work environment that is fair, open and respectful of differences. We welcome applications from highly qualified individuals interested in working towards our mission in a respectful, inclusive and collaborative setting. Your personal information will be collected and processed by LawZero to evaluate your application for employment in compliance with our Privacy Policy [https://lawzero.org/en/website-privacy-notice]. Under privacy laws in force in your country of residence, you may have several privacy rights, such as to request access to your personal information or to request that your personal information be rectified or erased. Details on how you can exercise your rights can be found in our Privacy Policy.
What you’ll do
You will architect and scale automated, petabyte-scale data processing pipelines to support frontier AI model research. This involves optimizing compute resources, ensuring data reliability, and maintaining full traceability of datasets.
Requirements
A bachelor's degree in a relevant field and 5+ years of experience in large-scale distributed data systems are required. Candidates must demonstrate proficiency in profiling and optimizing complex data pipelines and collaborating with cross-functional research teams.
Benefits
• Health benefits • Mental health and wellness management account • 20 days of vacation • Retirement savings contribution • Additional compensation
Listed skills
- Kubernetes · Preferred
- Docker · Preferred
Other relevant skills
Identified from the job description. Confirm important requirements above.
- Data platform engineering
- Distributed systems
- Data processing pipelines
- Ray
- Apache Spark
- Workflow orchestration
- Apache Arrow
- Parquet
- GPU optimization
- Dataset versioning
- Data lineage
- Kubernetes
- Slurm
- Docker
- Vector databases
- Software engineering
- Agentic AI
- Workplace Inclusivity
- Pipelines
- Vector Database
- Apache Parquet
- Observability
- Workflow Management
- Edge Intelligence
- Data Version Control (DVC)
- Research
- Artificial Intelligence
- Software Development
- Mental Health
- Containerization
- Computer Science
- Data Processing
- Computer Engineering
- Data Engineering
- Data Governance
- Data Processing Systems
- Management Accounting
- Distributed Data Store
- Experimentation
- Machine Learning
- Performance Engineering
- Product Family Engineering
- Public Transport
- Software Engineering
- Tooling
- Visionary
- Collaboration
- Reliability
- Slurm (Batch Scheduling Software)
- Docker (Software)
Job areas
- Technology
- Data & Analytics
- Software
- Engineering
- Science & Research
- Data Platform Engineer
- Platform Engineer
- Software and Applications Developers and Analysts Not Elsewhere Classified
- Validation Engineers
- Industrial Engineers
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