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Senior Amazon Data Engineer Jobs in Silver Spring, MD

AWS Data Engineer

Mclean, VA Β· On-site

$170K/yr

AWS Data Engineer Location: McLean, VA Type: Contract-to-Hire Compensation: $150,000.00 - $170,000 ... Amazon Athena, Amazon EMR, AWS Glue, and Amazon Redshift. β€’ Optimize performance and cost ...

Experience with designing, developing, deploying, or testing in Amazon Web Services (AWS ... Experience with data engineering projects supporting data science, AI/ML implementations, and ...

Senior Data Engineer with Security Clearance

Chantilly, VA Β· On-site

$109K - $148K/yr

Overview VTG is seeking a talented and experienced Senior Data Engineer to serve as an integrator ... Experience with Amazon Web Services (AWS) will be crucial as you deploy scalable solutions in a ...

Senior Data Engineer - Databricks

Mclean, VA Β· On-site

$140K - $180K/yr

We are looking for a seasoned Senior Data Engineer to work with our team and clients to develop ... Purview, or Amazon DataZone is a plus. * Demonstrated commitment to data governance and data ...

Data Engineer

Chantilly, VA Β· On-site

$140K - $195K/yr

Seeking a Cloud Data Engineer to design, develop, and optimize scalable cloud-based data platforms ... Experience with designing, developing, deploying, or testing in Amazon Web Services (AWS)

Senior Data Engineer - Databricks

Mclean, VA Β· On-site

$140K - $180K/yr

We are looking for more than just a Senior Data Engineer; we are seeking a technologist with ... Purview, or Amazon DataZone is a plus. * Demonstrated commitment to data governance and data ...

Senior Data Engineer - Databricks

Mclean, VA Β· On-site

$140K - $180K/yr

We are looking for more than just a Senior Data Engineer; we are seeking a technologist with ... Purview, or Amazon DataZone is a plus. * Demonstrated commitment to data governance and data ...

Data Engineer

Washington, DC Β· On-site

$109K/yr

Integrate data pipelines with Amazon Web Services (AWS) , leveraging services such as S3, Lambda ... Bachelor's degree in computer science, Engineering, Information Systems, or a related field * 4-8 ...

Data Engineer

Washington, DC Β· On-site

$129K - $155K/yr

Integrate data pipelines with Amazon Web Services (AWS) , leveraging services such as S3, Lambda ... Bachelor's degree in computer science, Engineering, Information Systems, or a related field * 4-8 ...

Sr Data Engineer

Mclean, VA Β· On-site

$116K - $139K/yr

... focused Senior Data Engineer to help build and scale our cloud data platform. In this role, you ... Write production\-grade PySpark code to read from Amazon S3 (Parquet\/Delta files), execute complex ...

Senior Data Engineer

Alexandria, VA Β· Remote

$113K - $154K/yr

Senior Data Engineer Location: Remote Clearance Level: Active Secret Overview Rackner is seeking a Senior Data Engineer to lead the design, development, optimization, and operation of enterprise data ...

New

Senior Data Engineer

Washington, DC Β· Remote

$120K - $163K/yr

Senior Data Engineer Location: Remote Clearance Level: Active Secret Overview Rackner is seeking a Senior Data Engineer to lead the design, development, optimization, and operation of enterprise data ...

New

Showing results 41-60

Senior Amazon Data Engineer information

See Silver Spring, MD salary details

$83.7K

$130.6K

$180.9K

How much do senior amazon data engineer jobs pay per year?

As of Sep 15, 2026, the average yearly pay for senior amazon data engineer in Silver Spring, MD is $130,595.00, according to ZipRecruiter salary data. Most workers in this role earn between $109,600.00 and $148,900.00 per year, depending on experience, location, and employer.

What does a senior Amazon data engineer do?

A Senior Amazon Data Engineer is responsible for designing, building, and maintaining large-scale data processing systems on Amazon Web Services (AWS) infrastructure. They work with big data technologies, such as Amazon Redshift, AWS Glue, and Amazon S3, to ensure data is efficiently collected, stored, and made accessible for analytics and business intelligence. Additionally, they often lead data engineering teams, optimize data pipelines for performance, and ensure data quality and security standards are met.

What are some common challenges faced by senior Amazon data engineers when working with large-scale datasets?

Senior Amazon Data Engineers often encounter challenges related to optimizing the performance of data pipelines and ensuring data quality at scale. Managing and transforming massive volumes of data requires expertise in distributed systems, efficient data modeling, and automating data validation processes. Additionally, collaborating with cross-functional teamsβ€”such as data scientists, analysts, and software engineersβ€”means balancing differing requirements and priorities while maintaining robust, scalable solutions. Staying current with evolving AWS services and best practices is also essential to address these challenges effectively.

What are the key skills and qualifications needed to thrive as a senior Amazon data engineer, and why are they important?

To thrive as a Senior Amazon Data Engineer, you need advanced proficiency in data modeling, ETL development, SQL, and experience with large-scale data architectures, typically supported by a computer science degree or equivalent. Expertise in AWS services (such as Redshift, S3, Glue), programming languages like Python or Java, and relevant certifications (e.g., AWS Certified Data Analytics) are commonly required. Strong problem-solving abilities, effective communication, and leadership skills distinguish top performers in this role. These skills ensure the efficient design, implementation, and optimization of complex data solutions that drive business insights and support organizational goals.

What is the difference between Senior Amazon Data Engineer vs Amazon Data Engineer?

AspectSenior Amazon Data EngineerAmazon Data Engineer
Required CredentialsTypically requires 5+ years experience, advanced SQL, AWS certificationsEntry to mid-level, foundational SQL, AWS certifications beneficial
Work EnvironmentDesigning complex data pipelines, mentoring, strategic projectsBuilding and maintaining data pipelines, data analysis
Employer & Industry UsageUsed in large-scale data teams within Amazon and similar tech companiesCommon in tech companies, e-commerce, and cloud service providers

The main difference between a Senior Amazon Data Engineer and an Amazon Data Engineer lies in experience, responsibilities, and project complexity. Senior roles involve strategic planning, mentoring, and handling complex data systems, while entry-level roles focus on building and maintaining data pipelines. Both roles require AWS knowledge and data engineering skills, but senior positions demand more experience and leadership capabilities.

What are popular job titles related to Senior Amazon Data Engineer jobs in Silver Spring, MD?

For Senior Amazon Data Engineer jobs in Silver Spring, MD, the most frequently searched job titles are:

What job categories do people searching Senior Amazon Data Engineer jobs in Silver Spring, MD look for?

The top searched job categories for Senior Amazon Data Engineer jobs in Silver Spring, MD are:

What cities near Silver Spring, MD are hiring for Senior Amazon Data Engineer jobs?

Cities near Silver Spring, MD with the most Senior Amazon Data Engineer job openings:

AWS Data Engineer

Mclean, VA β€’ On-site

System One Holdings, LLC
Business Consulting ServicesΒ β€’Β 5 - 10K employees

$170K/yr

Contractor

Medical, Dental, Vision, Life, Retirement

Posted 14 days ago


Job description

Job Title: AWS Data Engineer
Location: McLean, VA
Type: Contract-to-Hire
Compensation: $150,000.00 - $170,000.00
Work Model: Remote - offsite
Security Clearance: US Citizen with the ability to obtain a public trust
System One is looking for a strong AWS Data Engineer for a remote contract-to-hire position. While this position is remote, preference is given to those who are located in the Washington, DC Metro in case the team needs to meet in person.
Responsibilities
β€’ Build and operate data pipelines (batch and streaming) from various sources including APIs, relational databases, file drops, event streams, and external partners.
β€’ Design, implement, and optimize ETL/ELT pipelines using Python and PySpark to produce analytics-ready datasets for reporting, visualization, and machine learning.
β€’ Implement incremental processing, change data capture (CDC), data contracts, schema validation, and reusable transformation frameworks.
β€’ Improve pipeline reliability through automated testing, orchestration, monitoring, retry handling, and operational runbooks.
β€’ Build and manage a scalable lakehouse on Amazon S3 using Apache Iceberg and open columnar formats such as Apache Parquet.
β€’ Implement SQL-like table reliability features including ACID transactions, schema evolution, partition evolution, snapshot isolation, time travel, and rollback capabilities.
β€’ Enable fast, interactive querying of lakehouse data using AWS-native query and compute services such as Amazon Athena, Amazon EMR, AWS Glue, and Amazon Redshift.
β€’ Optimize performance and cost efficiency through partitioning, compaction, file sizing, caching, lifecycle policies, and efficient compute/storage separation.
β€’ Establish standardized development, testing, and production environments with consistent configuration and controlled promotion across stages.
β€’ Implement data governance and fine-grained access control utilizing AWS-native services like AWS Lake Formation, AWS Glue Data Catalog, IAM, KMS, and related security tools.
β€’ Create a managed metadata repository for dataset cataloging, ownership, tagging, classification, and discoverability.
β€’ Support end-to-end data lineage for source, transformation, and consumption to facilitate auditability and impact analysis.
β€’ Apply security policies such as least privilege access, data classification, encryption, retention, and secure data handling.
β€’ Build operational data quality checks for metrics such as freshness, completeness, validity, and anomaly detection, along with publishing SLAs/SLOs.
β€’ Implement automated AWS provisioning through Infrastructure as Code (IaC) to ensure consistent, secure environments.
β€’ Enhance CI/CD pipelines for data workflows and lakehouse components, including automated testing, security validation, packaging, deployment, promotion, and rollback.
β€’ Maintain observability with centralized metrics, logs, traces, alerts, dashboards, runbooks, and incident response procedures.
β€’ Continually evaluate platform performance, scalability, reliability, security, and cost, and implement measurable improvements.
β€’ Collaborate closely with data, application, analytics, AI/ML, security, networking, and cloud platform teams to support mission-critical requirements.
β€’ Maintain high-quality documentation including architecture diagrams, SOPs, data models, interface specs, and operational runbooks.
β€’ Present technical findings, trade-offs, risks, and recommendations clearly to stakeholders.
Requirements
β€’ Bachelor's degree in Engineering, Information Technology, Computer Science, Data Engineering, or a related field, or four (4) years of equivalent practical experience.
β€’ Six (6) years of relevant hands-on experience in data engineering.
β€’ Extensive experience designing, implementing, and operating AWS-native data lake or lakehouse architectures with Amazon S3, AWS Glue, Amazon Athena, Amazon EMR, AWS Lake Formation, and Amazon Redshift.
β€’ Proven ability developing production ETL/ELT pipelines using Python and PySpark, including data modeling, transformation, tuning, and error handling.
β€’ Hands-on experience with Apache Iceberg covering ACID transactions, snapshots, schema evolution, and query optimization.
β€’ Advanced SQL skills supporting analytical queries, reporting, and data visualization workloads.
β€’ Demonstrated experience with data governance, cataloging, lineage, ownership, classification, and access controls.
β€’ Knowledge of AWS security fundamentals including IAM, encryption (KMS), secrets management, and network security.
β€’ Experience provisioning resources via Infrastructure as Code (IaC) and managing multi-environment platforms.
β€’ Skilled in building and maintaining CI/CD pipelines for data workflows with automation, testing, and rollback strategies.
β€’ Strong troubleshooting skills for distributed data workloads with focus on performance, reliability, and cost management.
System One, and its subsidiaries including JoulΓ© and Mountain Ltd., are leaders in delivering outsourced services and workforce solutions across North America. We help clients get work done more efficiently and economically, without compromising quality. System One not only serves as a valued partner for our clients, but we offer eligible employees health and welfare benefits coverage options including medical, dental, vision, spending accounts, life insurance, voluntary plans, as well as participation in a 401(k) plan.
System One is an Equal Opportunity Employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex (including pregnancy, childbirth, or related medical conditions), sexual orientation, gender identity, age, national origin, disability, family care or medical leave status, genetic information, veteran status, marital status, or any other characteristic protected by applicable federal, state, or local law.
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About System One

Sourced by ZipRecruiter

System One helps employers get work done more efficiently and economically without compromising quality. Over our 35+ year history, we've helped connect thousands of talented people with innovative companies. The excitement of a perfect fit motivates us every single day.

Industry

Business consulting services and recruiting and staffing services

Company size

5,001 - 10,000 Employees

Headquarters location

Pittsburgh, PA, US