Data Architect

J5cyberconsulting

Maryland

On-site

USD 90,000 - 130,000

Full time

14 days+

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Benefits offered by this job

100% employer‑paid health coverage
6% 401(k) match
PTO
tuition reimbursement
bonuses
professional development

Job summary

J5cyberconsulting is seeking a skilled Data Engineer to optimize, implement, and maintain robust data infrastructure. The role involves collaborating with various teams to enhance data accessibility and reliability while ensuring data quality and observability. The ideal candidate must have experience in building data pipelines, integrating data from diverse platforms, and must hold a Top Secret Security Clearance. Enjoy benefits such as 100% employer-paid health coverage and a 6% 401(k) match.

Qualifications

  • Masters the design and maintenance of production data pipelines.
  • Expert in SQL, capable of complex queries and performance tuning.
  • Experience extracting and integrating data from various systems.

Responsibilities

  • Evaluate and optimize data infrastructure for scalability.
  • Collaborate with various stakeholders to assess data pipelines.
  • Implement data quality checks and validation frameworks.

Skills

Data pipeline design
SQL optimization
Data integration via APIs
JSON and XML data transformation
API development
Dimensional modeling
Python for data engineering
Cloud platforms (AWS/Azure/GCP)
ETL/ELT processes
Version control (Git)

Tools

Apache Airflow
Docker
Kubernetes
Apache Spark
Terraform

Job description

The Sponsor requires Data Engineering support to evaluate, optimize, and implement robust data infrastructure that enables reliable, accessible, and scalable data delivery across the organization. The Contractor will work collaboratively with data consumers, technical teams, leadership, and stakeholders to assess current data pipelines, identify gaps in data accessibility and reliability, and architect solutions that establish trusted data foundations. Work involves applying engineering best practices to implement proper data modeling and integration patterns, ensuring data quality and observability throughout pipelines, and creating maintainable infrastructure that supports analytics, reporting, and operational use cases.

Introduction

The Sponsor’s data landscape includes enterprise operational systems such as ServiceNow, network management platforms (NetIM), and network modeling tools (Forward Networks). The Data Engineering support must be adept at extracting data from these systems via APIs, exports, and vendor‑specific interfaces, often with limited documentation or non‑standard data structures, and transforming this operational data into accessible, integrated datasets.

Required Skills and Demonstrated Experience
  • Demonstrated experience designing, building, and maintaining production data pipelines using orchestration tools such as Apache Airflow or similar.
  • Demonstrated experience with SQL skills including complex queries, optimization, and performance tuning across multiple database platforms.
  • Demonstrated experience integrating data from Sponsor SaaS platforms and operational systems via APIs, including handling authentication, pagination, and rate limiting.
  • Demonstrated experience working with semi‑structured data (JSON and XML) from API responses and transforming into structured datasets.
  • Demonstrated experience developing robust API integrations with proper error handling and retry logic.
  • Demonstrated experience working with systems that have limited documentation or vendor‑specific data models.
  • Demonstrated experience with dimensional modeling and data warehouse design patterns.
  • Demonstrated proficiency in Python for data engineering including working with data processing libraries.
  • Demonstrated experience with cloud data platforms such as AWS, Azure, or GCP, including data services and infrastructure.
  • Demonstrated experience implementing ETL/ELT processes from diverse data sources.
  • Demonstrated experience with version control (Git) and software engineering best practices.
  • Demonstrated experience with strong problem‑solving and troubleshooting skills for complex data pipeline issues.
  • Demonstrated experience implementing data quality checks and validation frameworks.
  • Demonstrated experience translating business requirements into technical data solutions.
  • Demonstrated experience in having a proven track record of delivering reliable, scalable data infrastructure.
Highly Desired Skills and Demonstrated Experience
  • Demonstrated experience with ServiceNow APIs, data models, and integration patterns.
  • Demonstrated experience with network management or IT operations systems data extraction.
  • Demonstrated experience with Forward Networks, NetIM, SolarWinds, or similar network management platforms.
  • Demonstrated experience and knowledge of ITSM, ITOM, and CMDB data structures and relationships.
  • Demonstrated experience with API gateway platforms and API management tools.
  • Demonstrated experience with Apache Spark, particularly PySpark, for distributed data processing.
  • Demonstrated experience with DBT (data build tool) for transformation workflows.
  • Demonstrated experience with infrastructure‑as‑code tools such as Terraform or CloudFormation.
  • Demonstrated experience implementing CI/CD pipelines for data engineering code.
  • Demonstrated experience and knowledge of streaming data technologies such as Kafka, Kinesis, or similar platforms.
  • Demonstrated experience with data quality platforms such as Great Expectations, Soda, or Monte Carlo.
  • Demonstrated experience implementing data observability and monitoring solutions.
  • Demonstrated experience and knowledge of Data Vault or other advanced modeling methodologies.
  • Demonstrated experience with containerization (Docker) and orchestration (Kubernetes) for data workloads.
  • Demonstrated experience with reverse ETL and operational analytics patterns.
  • Demonstrated experience with data governance platforms and metadata management tools.
  • Demonstrated experience with multiple cloud platforms and multi‑cloud architectures.
  • Demonstrated experience mentoring or leading data engineering initiatives.

__________________________________________________________________________________

US Citizenship
  • This position requires US Citizenship. Verification of US Citizenship to meet federal government security requirements will be confirmed.
Security Clearance
  • The successful candidate must have an active U.S. Government Top Secret Security Clearance with a Full Scope Polygraph.
  • Clearance Verification: This position requires successful verification of the stated security clearance to meet federal government customer requirements. You will be asked to provide clearance verification information prior to an offer of employment.
Travel
  • This position is expected to be onsite. The position will be located within the Washington Metropolitan Area (WMA). Local travel/POV will be on an as needed basis, within the local place of performance.

Enjoy comprehensive benefits, including:

  • 100% employer‑paid health coverage
  • a 6% 401(k) match
  • PTO
  • tuition reimbursement
  • bonuses
  • professional development, and more.
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