Data Architect (AWS Databricks)

HMG America
Seattle, WA, United States
4 days ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Working hours
Regular working hours
Job source

Tech stack

Amazon Web Services Software Quality Data Architecture Information Engineering Data Infrastructure Scrum Methodology Unstructured Data Data Ingestion Data Lakes Virtual Agents Data Pipelines Databricks

Job description

We are looking for a Data Architect to own the design and delivery of modern data platforms built on AWS and Databricks. This role combines deep hands-on engineering with team leadership, covering data ingestion, transformation, and warehousing across structured and unstructured sources., * Architect and deliver end-to-end data engineering solutions on AWS and Databricks, spanning ingestion, transformation, and warehousing layers.

  • Design scalable pipelines for structured and unstructured data, balancing reliability, performance, and cost efficiency.
  • Lead and mentor a team of data engineers, overseeing sprint planning, code quality, and technical delivery.
  • Partner with architects and business stakeholders to translate requirements into robust, production-ready designs.
  • Establish and maintain standards for data quality, governance, and platform scalability.

Requirements

AWS Services - Hands-on expertise across core AWS services spanning compute, storage, orchestration, and security in production environments.

Databricks Platform - Deep proficiency in Databricks, including Delta Lake, Unity Catalog, cluster management, and job orchestration at scale.

Data Engineering Lifecycle - Proven ability to design and operate ingestion, transformation, and warehousing pipelines across structured and unstructured data.

Team Leadership - Experience leading and mentoring data engineering teams, managing delivery timelines, and driving technical quality.

GOOD-TO-HAVE SKILLS

Agentic AI Exposure - Working understanding of agentic AI concepts and frameworks, and how they apply within modern data platforms.

Manufacturing Industry Knowledge - Familiarity with manufacturing industry data landscapes, processes, and common use cases.

Data Modelling - Understanding of data modelling principles, including dimensional and canonical modelling approaches.

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Good distractions

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