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AWS Data Engineer - Healthcare Payer

Palni IncUnited States🇺🇸United StatesPosted 25 Aug 2026

Quick Overview

Seniority
Mid Senior
Work mode
Hybrid
Location
United States
Posted
2 days ago
SQLAWSAirflowApacheApache SparkDatabricksPythonUnity

Job Description

Role: AWS Databricks Engineer – Healthcare Payer

Duration: 6 months – C2H

Location: USA (Remote)

Visa: Permanent Residents only!!

 

Job Description: 

An AWS Databricks Data Engineer to design, build, and maintain scalable data pipelines and Lakehouse architectures using Apache Spark, Python, and SQL. Optimize cloud storage, ensure data quality, and integrate seamlessly with other AWS services

Core Responsibilities

       Pipeline Development: Design and build batch and streaming data pipelines using PySpark, Delta Lake, Autoloader and Delta Live Tables (DLT) to ingest data sets into Databricks.

       AWS Integration: Build cloud-native data solutions leveraging AWS services (e.g., S3 for storage, IAM for access management, and AWS Glue or Lambda for serverless tasks

       Data Governance & Security: Configure and manage access controls using Databricks Unity Catalog to ensure compliance and monitor lineage

       Orchestration & CI/CD: Automate pipeline deployments using Databricks Workflows, Apache Airflow, and CI/CD tools (e.g., GitHub, GitLab). [1, 2, 3]

       Cross-Functional Collaboration: Partner closely with stakeholders to build robust feature stores and prepare datasets for various consumption needs

Typical Qualifications & Technical Skills

       Industry: Healthcare Payer industry experience. Have worked on MMIS data sets – claims, provider, member enrollment and similar data sets

       Experience: 3-5 years of hands-on data engineering experience, specifically on Databricks.

       Programming: High proficiency in Python (specifically PySpark) and advanced SQL.

       Big Data & Cloud: Strong understanding of Apache Spark, Data Lakehouse architecture, and working within a production AWS environment.

       Databricks Ecosystem: Familiarity with the Databricks platform ecosystem, including notebooks, Delta Lake, and Unity Catalog.

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