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Senior Data Engineer
Data Engineering
Toronto, OntariohybridFull-Time
About ShyftLabs
At ShyftLabs, we live and breathe data. Since 2020, we've been helping Fortune 500 companies unlock growth with cutting-edge digital solutions that transform industries and create measurable business impact. We're growing fast, and we're looking for passionate technical leaders who are excited to solve complex data challenges, build modern cloud platforms, and deliver innovative solutions for enterprise clients.
The Opportunity
ShyftLabs is seeking an experienced Senior / Lead Data Engineer to lead the design, architecture, and delivery of enterprise-scale data platforms for Fortune 500 organizations. This is a highly client-facing leadership role responsible for owning projects from discovery through production deployment. You'll partner directly with client stakeholders to understand business objectives, define technical strategy, architect scalable cloud solutions, and lead engineering teams through successful delivery. The ideal candidate combines deep hands-on expertise with Databricks, Apache Spark, Python, SQL, and modern cloud platforms with proven experience leading complex data modernization initiatives. You'll play a key role in shaping technical direction, mentoring engineers, establishing engineering best practices, and delivering scalable data products that enable analytics, AI, and machine learning.
What You'll Be Doing
Technical Leadership
Client Partnership
Data Engineering & Platform Development
Cloud & DevOps
Data Governance & Security
Cross-Functional Collaboration
What You'll Bring
- Bachelor's or Master's degree in Computer Science, Data Engineering, Software Engineering, or a related technical discipline.
- 8+ years of experience designing and building enterprise-scale data platforms.
- 5+ years of hands-on experience with Databricks and Apache Spark.
- Proven experience leading enterprise data engineering projects from architecture through production delivery.
- Strong expertise in Python, SQL, and Spark for large-scale data processing.
- Deep understanding of Delta Lake, Lakehouse architecture, and modern data platform design.
- Experience working with AWS, Azure, or Google Cloud Platform.
- Strong knowledge of ETL/ELT frameworks, distributed computing, and data modeling.
- Experience implementing CI/CD pipelines and Infrastructure-as-Code.
- Strong understanding of data governance, security, metadata management, and data quality practices.
- Experience optimizing distributed data processing workloads for performance and cost.
- Excellent communication and stakeholder management skills with experience working directly with enterprise clients.
- Demonstrated ability to mentor engineers and lead technical initiatives
Nice to Have
- Databricks Certified Professional Data Engineer certification.
- Experience with Delta Live Tables, MLflow, Unity Catalog, and Databricks SQL.
- Experience with Kafka, Kinesis, Event Hubs, or other streaming technologies.
- Hands-on experience with Snowflake, dbt, Airflow, or modern data orchestration tools.
- Experience with Kubernetes, Docker, and Terraform.
- Knowledge of AI/ML data platforms, Feature Stores, or Retrieval-Augmented Generation (RAG) architectures.
- Previous consulting or professional services experience delivering solutions for enterprise clients.
- Experience within retail, e-commerce, financial services, logistics, healthcare, or ad-tech environments.
Salary Range
- $140,000 – $180,000 (CAD)
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