EPAM Systems

Data Architect

EPAM Systems • $130K — $155K *
US-Anywhere
+ 2 other locationsRemote
Information Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 7+ years of experience in data architecture and engineering, ideally in AWS environments
  • Expertise with Amazon SageMaker Unified Studio, including catalog management and serverless compute
  • Proficient in AWS Glue, AWS Lambda, and serverless workflows for data processing
  • Strong background in Data Lake architectures, particularly with Amazon S3 and formats like Parquet, Iceberg, and Delta
  • Familiarity with Amazon OpenSearch Service for analytics and data exploration
  • Effective communication skills in English, minimum B2 level

Responsibilities

  • Configure and manage Amazon SageMaker Unified Studio, including data catalogs and blueprints
  • Enable self-service data discovery and analysis for users via SageMaker
  • Design and maintain blueprints for governed data workflows, managing IAM and access policies
  • Architect and uphold the data foundation on AWS, ensuring scalability and governance
  • Design and optimize data lake architectures using Amazon S3, implementing modern storage solutions
  • Integrate Amazon OpenSearch Service for enhanced data usability
  • Build and optimize serverless data pipelines with AWS Glue and Lambda, ensuring reliability and monitoring

Benefits

  • Opportunity to work on cutting-edge technologies in cloud-native environments
  • Engagement in long-term projects allowing for deep impact and contribution
  • Collaborative work with AI/ML teams to innovate data-driven solutions
  • Focus on professional development through knowledge transfer sessions
  • Chance to influence the architecture and governance of data strategies in a dynamic setting
Full Job Description
We are seeking a Staff Consultant to serve as a long-term, full-time resident Data Architect supporting our customer's data foundation. This role focuses on enabling and operating Amazon SageMaker Unified Studio, building and optimizing serverless data pipelines, managing modern data lake storage formats, and integrating agentic AI services to support data rendering and analytics. The position spans data platform engineering, self-service analytics enablement, and BI delivery through Quick Suite, all aligned with AWS cloud-native best practices. Responsibilities Configure, manage, and support Amazon SageMaker Unified Studio (SMUS), including data catalog, blueprints, and serverless compute capabilities Enable self-service data discovery, exploration, and analysis for business and technical users through SMUS Design and maintain SMUS blueprints and templates for repeatable, governed data workflows, while managing IAM domains, access policies, and governance configurations Architect and maintain the customer's data foundation on AWS, ensuring scalability, governance, and performance Design and optimize data lake architectures using Amazon S3, including modern storage formats (Parquet, Iceberg, Delta), and implement data cataloging, partitioning, and lifecycle management strategies for large-scale environments Integrate Amazon OpenSearch Service for search, analytics, and data exploration use cases Build and optimize serverless data pipelines using AWS Glue and AWS Lambda, including ETL/ELT jobs for data ingestion, transformation, and delivery Ensure pipeline reliability, monitoring, and error handling using AWS-native tooling such as CloudWatch, Glue job metrics, and S3 analytics Support the integration and delivery of Quick Suite (QuickSight / QuickSight Q) for analytics, dashboards, and self-service reporting Integrate agentic AI services to support intelligent data rendering, automated insights, and data-driven decision-making, collaborating with AI/ML teams to connect agentic workflows with the data foundation Apply AWS Well-Architected Framework principles with emphasis on security, reliability, performance efficiency, and cost optimization Document data architectures, SMUS configurations, pipeline designs, and operational runbooks, and conduct regular knowledge transfer sessions to build internal capability Requirements 7+ years of experience in data architecture and engineering roles, preferably within AWS cloud environments Expertise in Amazon SageMaker Unified Studio, including catalog, blueprints, and serverless compute Proficiency in AWS Glue, AWS Lambda, and serverless compute for data workflows Background in Data Lake architectures and Amazon S3 with modern storage formats (Parquet, Iceberg, Delta) Skills in Data Foundation Architecture, covering catalog, governance, and self-service enablement Familiarity with Amazon OpenSearch Service for search, analytics, and data exploration Proficient communication skills in English (B2 level or higher) Nice to have Knowledge of Quick Suite / Amazon QuickSight Understanding of Agentic AI Services (e.g., Bedrock Agents, AgentCore) Competency in Amazon Lake Formation Skills in Infrastructure as Code (CDK, Terraform) Strong knowledge of Python

About EPAM Systems

EPAM Systems, Inc. is a leading global provider of digital platform engineering and development services. The company has a strong presence in North America, Europe, and Asia, and serves clients in a variety of industries, including financial services, healthcare, and retail. EPAM's services include software engineering, product development, and digital platform engineering, and the company has a reputation for delivering high-quality solutions that help its clients achieve their business goals. EPAM has been recognized as a leader in the digital services industry by a number of independent research firms, and the company has won numerous awards for its work.
Learn more about EPAM Systems
Size
58,824 employees
Market Cap
$18.2 billion
Industry
Net Income
$327.1 million
Founded
1993
5 Year Trend
+26.5%
Revenue
$2.6 billion
NASDAQ

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