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Advance Data Engineer

  • Canada
  • Remote
  • Posted Sep 24, 2026
  • 1 position

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Employment type
Full-time
Experience level
Senior · 5+ years
Posting language
English
Working hours
40 hours per week
Seniority
Mid-Senior level
Application method
Direct apply is available

Job summary

Design, build, and maintain robust, scalable, and automated data pipelines for batch and streaming data ingestion. Implement data models and architectures while integrating monitoring and alerting mechanisms to ensure pipeline health.

Job details

Description This job posting is for an existing, active vacancy and We are looking to hire Advance Data Engineer in Canada (WFH), immediately who has strong experience in Python, PyTest, PySpark , Databricks and Delta Live Tables. Role Overview: Mandatory Skill: Programming Languages: Proficient in Python, PyTest and PySpark with a strong understanding software engineering best practices. Oops Concept: Strong Knowledge of It. Cloud Computing: Utilize Azure cloud-based data platforms, specifically leveraging Databricks and Delta Live Tables for data engineering tasks, while effectively utilizing services related to storage, compute, and security. Data Pipelines: Design, build, and maintain robust and scalable and automated data pipelines for batch and streaming data ingestion of data and processing (Data bricks workflow). Data Architecture and Modeling: Design and implement robust data models and architectures that align with business requirements and support efficient data processing, analysis, and reporting. Orchestration: Utilize workflow orchestration tools to automate data pipeline execution and dependency management. Monitoring and Alerting: Integrate monitoring and alerting mechanisms to track pipeline health, identify performance bottlenecks, and proactively address issues. Strong Agile principles: Utilize Agile development methodologies, actively participating in sprint planning, daily stand-ups, sprint reviews, and retrospectives. Be flexible and adaptable to changing requirements and priorities throughout the project lifecycle. Unity Catalog Good to Have: Github Actiom Datagog exposure Data Quality: Implement data quality checks and balances throughout the data pipeline, including profiling, validation, and root cause analysis, to ensure data accuracy, completeness, and consistency. CI/CD: Implement continuous integration and continuous delivery (CI/CD) practices for automated testing and deployment of data pipelines.

What you’ll do

Design, build, and maintain robust, scalable, and automated data pipelines for batch and streaming data ingestion. Implement data models and architectures while integrating monitoring and alerting mechanisms to ensure pipeline health.

Requirements

Requires strong proficiency in Python, PyTest, PySpark, and Azure-based data platforms like Databricks and Delta Live Tables. Candidates must have experience with Agile methodologies and software engineering best practices.

Listed skills

  • Microsoft Azure · Preferred
  • CI/CD · Preferred
  • Agile · Preferred
  • Python · Preferred

Other relevant skills

Identified from the job description. Confirm important requirements above.

  • Python
  • PyTest
  • PySpark
  • Databricks
  • Delta Live Tables
  • Azure
  • Data Pipelines
  • Data Modeling
  • Workflow Orchestration
  • Agile
  • Unity Catalog
  • CI/CD
  • Data Quality
  • Software Engineering
  • Cloud Computing

Job areas

  • Data & Analytics
  • Software
  • Technology
  • Engineering
  • Consulting