Lead pipeline architecture decisions for assigned workstreams, including batch and real-time ingestion, transformation, and delivery to analytics and AI layers.
Design, build, and maintain scalable ETL/ELT workflows with strong data quality, lineage, monitoring, and observability built in from the start.
Establish data contracts and pipeline standards for the projects you own, and ensure those standards are followed by other contributors on the workstream.
Ensure data reliability, performance, and scalability across platforms; proactively surface bottlenecks and recommend improvements before they affect delivery.
Support both batch and streaming ingestion patterns, including real-time data pipeline design and implementation.
LLM Enablement & AI Data Foundations
Design and implement data pipelines that support LLM and AI use cases, including:
Document and unstructured data ingestion
Data preprocessing, enrichment, and embedding generation
Vector store integration and retrieval-optimized data structures
Lead embedding pipeline architecture and vector store configuration in collaboration with developers building LLM features.
Ensure data freshness, lineage, and governance for AI-powered systems.
Optimize data structures and retrieval patterns to support efficient LLM context usage.
Contribute to RAG pipeline design and maintain awareness of foundation model data requirements across active engagements.
Cloud Architecture (AWS)
Architect and provision AWS services to support data and AI workloads, including S3, Glue, Glue Catalog, Redshift, Athena, EMR, Kinesis, MSK, Lambda, Step Functions, and EventBridge.
Lead FedRAMP-compliant architecture design for data environments where required; apply security and access control patterns using Lake Formation and IAM.
Contribute to reusable reference architectures for data lakes, warehouses, streaming systems, and AI-ready platforms.
Partner with platform and DevOps teams to ensure secure, cost-effective, and scalable cloud deployments.
Apply infrastructure-as-code and automation practices to data platform provisioning and maintenance.
Client & Stakeholder Engagement
Participate in client discovery and requirements-gathering sessions, translating operational needs into concrete data architecture recommendations.
Communicate clearly with both technical and non-technical stakeholders, adapting depth and language to the audience without losing precision.
Assess and document client data readiness for analytics and AI adoption; identify gaps and propose remediation paths to the lead architect or engagement manager.
Support the technical narrative during delivery, contributing to solution design documents, architecture diagrams, and client-facing documentation.
Build working trust with client counterparts through consistency, follow-through, and clear expectation-setting.
Technical Delivery Leadership
Own the data engineering workstream within a project delivery plan, including task decomposition, estimation, and sequencing in Jira.
Understand how individual tickets connect to the larger delivery arc, and surface dependencies or risks before they block progress.
Facilitate technical planning and review ceremonies for the data workstream; provide clear updates to project managers and technical leads.
Partner with project managers and product owners to keep the data engineering track aligned with contractual and delivery constraints.
Coordinate across engineering, platform, analytics, and ML teams to ensure data pipelines meet downstream requirements.
Product & Data Readiness Support
Support the evolving data architecture behind product capabilities, including predictive and real-time ML systems.
Assess and improve internal and client data readiness for analytics and AI adoption.
Translate business, product, and client needs into scalable data architectures that can be maintained and extended by the broader team.
Document data architectures, pipeline designs, and integration patterns to support transparency and reuse across engagements.
Staff Development & Knowledge Sharing
Mentor junior and core-level data engineers through code reviews, architecture critiques, and hands-on guidance on active projects.
Identify skill gaps in team members and work with technical leadership to address them through structured coaching or pairing.
Contribute to internal playbooks, onboarding materials, and engineering standards that reduce tribal knowledge and improve team consistency.
Help team members understand the business context behind their work, connecting individual tasks to client outcomes and technical strategy.
Collaboration & Communication
Collaborate closely with developers building LLM features to ensure data pipelines meet AI requirements.
Work with product, analytics, and technical leadership to align data strategy with organizational and project goals.
Communicate findings, risks, and architectural decisions clearly in both written and verbal form, including client-facing documentation.
Contribute to proposal efforts and technical volume sections as a subject matter contributor.
Qualifications
Required
Bachelor's degree or equivalent experience in data engineering, computer science, or a related field.
5+ years of hands-on data engineering experience, with demonstrated progression into senior or lead responsibilities.
Strong hands-on experience with AWS data services, including S3, Glue, Redshift, Athena, Kinesis or MSK, Lambda, and Lake Formation.
Proven ability to design and deliver production-grade ETL/ELT pipelines and data warehousing solutions.
Solid understanding of streaming architectures and real-time data pipeline design.
Experience supporting AI or LLM-adjacent data workflows, including embedding pipelines and vector store integration.
Ability to communicate clearly with both technical and non-technical stakeholders, including direct client interaction.
Experience decomposing and tracking delivery work in Jira or equivalent tooling.
Strong problem-solving skills and architectural reasoning at the workstream level.
Preferred
AWS certifications: Solutions Architect Associate (SAA-C03), Data Engineer Associate (DEA-C01), or equivalent.
Databricks Certified Data Engineer Associate and/or dbt Certified Developer.
Experience with infrastructure-as-code tools such as Terraform or CDK.
Background in consulting, professional services, or multi-client delivery environments.
Familiarity with data governance frameworks, data cataloging, and lineage tooling.
Experience with Databricks, dbt, and Airflow or Prefect orchestration.
Exposure to vector databases such as Amazon OpenSearch, Pinecone, or pgvector.
Exposure to DoD, federal, or regulated-sector data environments; FedRAMP-compliant architecture experience a plus.
Numbers & Facts
Location
Albuquerque, NM (Remote)
Salary
$140,000
Skills
AWS Lambdaunmatched
Access Controlunmatched
Amazon Simple Storage Service (S3)unmatched
Amazon Web Services (AWS)unmatched
Architectural Designunmatched
Architectural Servicesunmatched
Artificial Intelligence (AI)unmatched
Atlassian JIRAunmatched
Automationunmatched
Business Strategyunmatched
C Programming Languageunmatched
Cataloguingunmatched
Cloud Computingunmatched
Coachingunmatched
Code Reviewsunmatched
Communication Skillsunmatched
Computer Scienceunmatched
Concreteunmatched
Consultingunmatched
Customer Relationsunmatched
Customer/Client Researchunmatched
Data Analysisunmatched
Data Managementunmatched
Data Modelingunmatched
Data Qualityunmatched
Data Recoveryunmatched
Data Structuresunmatched
Data Warehousingunmatched
Database Extract Transform and Load (ETL)unmatched
Design Documentunmatched
DevOpsunmatched
Documentationunmatched
Electronic Medical Recordsunmatched
Engineeringunmatched
Follow Throughunmatched
Leadershipunmatched
Machine Toolunmatched
Materials Engineeringunmatched
Mentoringunmatched
Multiplatform/Cross-Platformunmatched
Onboardingunmatched
Problem Solving Skillsunmatched
Professional Servicesunmatched
Project Planningunmatched
Project/Program Managementunmatched
Requirements Managementunmatched
Scalable System Developmentunmatched
Staff Developmentunmatched
Technical Deliveryunmatched
Technical Leadershipunmatched
Technical Strategyunmatched
Technical Supportunmatched
United States Department of Defense (DoD)unmatched
United States Drug Enforcement Agency (DEA)unmatched
Use Casesunmatched
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