Senior Data Engineer (Databricks/AWS)

Posted Yesterday
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Toronto, ON, CAN
In-Office
Senior level
Sharing Economy
The Role
Lead data engineering efforts to migrate CRM data from Veeva to Salesforce Life Sciences Cloud into a Databricks lakehouse on AWS. Build and optimize ingestion pipelines, implement dbt transformations and Airflow orchestrations, manage Delta tables and Databricks clusters, and enforce data quality, monitoring, and CI/CD practices while collaborating across teams on US East Coast hours.
Summary Generated by Built In

About Fusemachines

Fusemachines is a 12+ year old AI company, dedicated to delivering state-of-the-art AI products and solutions to a diverse range of industries. Founded by Sameer Maskey, Ph.D., an Adjunct Associate Professor at Columbia University, our company is on a steadfast mission to democratize AI and harness the power of global AI talent from underserved communities. With a robust presence in four countries and a dedicated team of over 400 full-time employees, we are committed to fostering AI transformation journeys for businesses worldwide. At Fusemachines, we not only bridge the gap between AI advancement and its global impact but also strive to deliver the most advanced technology solutions to the world.
Type: Full-time, Remote
 

About the role

This is a full-time, high-impact position for a Senior Data Engineer with expertise in Databricks, dbt, and Apache Airflow to support a critical CRM data architecture migration for a key client in the Life Sciences industry.

In this role, you will join an urgent initiative to backfill key engineering capabilities and maintain momentum during an ongoing CRM system transition. The project involves migrating enterprise customer data from Veeva CRM to Salesforce Life Sciences Cloud, integrated with an underlying AWS S3 cloud environment and Databricks data warehouse. Your main focus will be building out, configuring, and redirecting data ingestion pipelines out of Life Sciences Cloud into the data warehouse, while implementing dbt models and Airflow orchestrations to ensure complete data accuracy.

Candidates must be able to operate strictly on US East Coast business hours (location is flexible across North America, LATAM, or remote with full Eastern Time overlap).

Qualification / Skill Set Requirement:

  • Core Technical Expertise:

    • 5+ years of hands-on data engineering experience with deep expertise in AWS, Databricks, dbt, and Apache Airflow.

    • Strong programming proficiency in Python / PySpark and Advanced SQL (complex joins, analytical window functions).

    • Hands-on expertise in Databricks platform architecture, Lakehouse implementation, Delta Lake, Unity Catalog, and cluster performance tuning.

  • Architecture & Migration:

    • Proven track record of architecting and executing migrations.

    • Demonstrated experience scaling platform performance.

  • Pipeline Orchestration & Modeling:

    • Proven experience building scalable transformations pipelines using dbt for data transformation, testing, and documentation.

    • Solid background orchestrating complex workflow DAGs with Apache Airflow.

    • Experience working with AWS cloud infrastructure, specifically AWS S3 as an underlying data lake storage layer.

  • CRM Integration & Domain Knowledge:

    • Hands-on experience developing integrations and data ingestion pipelines for CRM platforms, specifically Salesforce, Salesforce Life Sciences Cloud, and/or Veeva CRM.

    • Understanding of data structures, customer master data, and analytics workflows within the Life Sciences.

  • DevOps & Governance:

    • Deep understanding of SDLC/Agile and DevOps for CI/CD and artifact management.

    • Knowledge of AWS and Databricks security best practices and compliance standards.

  • Certifications Preferred: Databricks Certified Data Engineer Associate/Professional, Databricks Spark Developer, and major cloud certifications in AWS.

  • Logistics & Shift Overlap:

    • Ability to maintain 100% full working time overlap with US East Coast business hours (ET). Flexible location (US, Canada, LATAM, or remote ET).

Responsibilities

  • Pipeline Development & Integration: Architect, build, and deploy data integration pipelines connecting Salesforce Life Sciences Cloud to the client’s Databricks warehouse environment.

  • CRM Migration Support: Execute pipeline modifications to transition legacy data feeds from Veeva CRM to Salesforce Life Sciences Cloud, updating warehouse models accordingly.

  • Transformation & Workflow Orchestration: Write clean, modular dbt transformation models and organize end-to-end DAG execution using Apache Airflow.

  • Data Warehouse & Storage Optimization: Manage Delta tables and optimize Databricks clusters and AWS S3 storage for high performance and cost efficiency.

  • Data Validation & Quality Assurance: Implement data quality testing, schemas, and verification rules in dbt and Python to guarantee accurate data delivery.

  • Monitoring & Alerting: Build and enforce proactive monitoring frameworks.

  • Agile Collaboration: Work closely with project leads, solution architects, and technical stakeholders during US East Coast hours to ensure rapid iteration and goal completion.

Equal Opportunity Employer: Race, Color, Religion, Sex, Sexual Orientation, Gender Identity, National Origin, Age, Genetic Information, Disability, Protected Veteran Status, or any other legally protected group status.

Skills Required

  • 5+ years hands-on data engineering experience with AWS, Databricks, dbt, and Apache Airflow.
  • Strong programming proficiency in Python and PySpark.
  • Advanced SQL skills (complex joins, analytical window functions).
  • Experience with Databricks platform architecture, Lakehouse implementation, Delta Lake, Unity Catalog, and cluster performance tuning.
  • Proven track record architecting and executing data migrations and scaling platform performance.
  • Experience building dbt transformation models, testing, and documentation.
  • Experience orchestrating complex workflows using Apache Airflow (DAGs).
  • Experience with AWS S3 as data lake storage and general AWS cloud infrastructure.
  • Hands-on experience integrating CRM platforms, specifically Salesforce Life Sciences Cloud and/or Veeva CRM.
  • Understanding of customer master data and analytics workflows in the Life Sciences domain.
  • Knowledge of SDLC/Agile and DevOps practices for CI/CD and artifact management.
  • Knowledge of AWS and Databricks security best practices and compliance standards.
  • Ability to maintain 100% full working time overlap with US East Coast business hours (ET).
  • Databricks Certified Data Engineer Associate/Professional, Databricks Spark Developer, or major AWS cloud certifications.
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The Company
HQ: New York, NY
428 Employees
Year Founded: 2013

What We Do

A 10+ year old AI company offering cutting-edge AI products and solutions across industries. With over a decade of experience, we help companies in their AI Transformation journey with our suite of AI Products and AI Solutions supported by our global AI Talent from underserved communities. On a mission to #DemocratizeAI, we aim to bridge the gap between AI advancement and global impact, bringing the most advanced technology solutions to the world.

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