AI/ML Data Engineer
Reston, Virginia, US
- Pay
- Salary not listed in the saved posting
- Work setup
- Unconfirmed
- Employment
- Unconfirmed
What you’ll work on
Full postingDesign cloud-native, distributed data systems optimized for performance, scale, security, reliability, and cost.
Partner across Data Science, ML Engineering, Software, Cybersecurity, and Enterprise Architecture to translate AI requirements into production-grade capabilities.
Lead architectural decisions; drive reuse across organizations and eliminate duplication.
From the employer’s posting
Architect and evolve an enterprise AI data platform enabling vector search, semantic retrieval, RAG, and agentic workflows. Design cloud-native, distributed data systems optimized for performance, scale, security, reliability, and cost. Establish and implement controls for:
Explainability and evaluation of AI outputs Partner across Data Science, ML Engineering, Software, Cybersecurity, and Enterprise Architecture to translate AI requirements into production-grade capabilities. Lead architectural decisions; drive reuse across organizations and eliminate duplication. Implement monitoring/observability/alerting and operational excellence best practices.
Partner across Data Science, ML Engineering, Software, Cybersecurity, and Enterprise Architecture to translate AI requirements into production-grade capabilities. Lead architectural decisions; drive reuse across organizations and eliminate duplication. Implement monitoring/observability/alerting and operational excellence best practices. Mentor engineers and raise engineering standards (design reviews, coding standards, CI/CD discipline).
What you’ll bring
All qualificationsCore experience
- Bachelor's in CS/Engineering/Math/Data Science (or equivalent experience).
- Deep experience with AWS, Azure, or GCP data/AI platforms.
- 20+ years in software engineering, data engineering, distributed systems, cloud architecture, or AI/ML platform development.
- Strong understanding of distributed systems, cloud-native architecture, MLOps, platform engineering.
- Experience in complex enterprises with security constraints, dependencies, governance, and competing priorities.
- Experience with CI/CD, orchestration, IaC/automation, observability.
Qualification wording
Bachelor's in CS/Engineering/Math/Data Science (or equivalent experience).
Deep experience with AWS, Azure, or GCP data/AI platforms.
20+ years in software engineering, data engineering, distributed systems, cloud architecture, or AI/ML platform development.
Strong understanding of distributed systems, cloud-native architecture, MLOps, platform engineering.
Experience in complex enterprises with security constraints, dependencies, governance, and competing priorities.
Experience with CI/CD, orchestration, IaC/automation, observability.
Tools in this posting
- Python
- SQL
- AWS
- Azure
- Google Cloud (GCP)
Source — Tool mentions in context
Technical: - Expert in Python and SQL; strong software engineering practices. - Deep experience with AWS, Azure, or GCP data/AI platforms.
- Expert in Python and SQL; strong software engineering practices. - Deep experience with AWS, Azure, or GCP data/AI platforms. - Strong understanding of distributed systems, cloud-native architecture, MLOps, platform engineering.
About Bigbear.ai Holdings Inc
BigBear.ai is a leading provider of AI-powered decision intelligence solutions for national security, supply chain management, and digital identity.
In the employer’s words · Read in context
Job description
All applicants must currently reside in the United States
Overview
BigBear.ai is seeking an AI/ML Data Engineer to architect, build, and operate enterprise-scale AI data platforms enabling vector databases, semantic search, Retrieval-Augmented Generation (RAG), and agentic AI systems. This role will establish the technical and governance foundations for production AI, including data lineage, source attribution, prompt/context traceability, explainability, and evaluation in mission environments.
What you will do
What You’ll Do
- Architect and evolve an enterprise AI data platform enabling vector search, semantic retrieval, RAG, and agentic workflows.
- Design cloud-native, distributed data systems optimized for performance, scale, security, reliability, and cost.
Establish and implement controls for:
- Data quality, lineage, provenance/source attribution
- Prompt + context traceability and auditability
- Explainability and evaluation of AI outputs
- Partner across Data Science, ML Engineering, Software, Cybersecurity, and Enterprise Architecture to translate AI requirements into production-grade capabilities.
- Lead architectural decisions; drive reuse across organizations and eliminate duplication. Implement monitoring/observability/alerting and operational excellence best practices.
- Mentor engineers and raise engineering standards (design reviews, coding standards, CI/CD discipline).
- Evaluate emerging AI technologies (vector DBs, retrieval frameworks, evaluation stacks) and recommend adoption paths.
What you need to have
- Active Top Secret / SCI with Polygraph is mandatory.
- Bachelor's in CS/Engineering/Math/Data Science (or equivalent experience).
- 20+ years in software engineering, data engineering, distributed systems, cloud architecture, or AI/ML platform development.
- Proven delivery of enterprise-scale AI/ML / GenAI / agentic systems.
- Track record of architecting production cloud-native data platforms supporting AI workloads.
- Experience in complex enterprises with security constraints, dependencies, governance, and competing priorities.
- Deep experience with data pipelines supporting ML models, vector databases, semantic search, and GenAI apps.
- End-to-end delivery ownership from strategic requirements through operational deployment.
Technical:
- Expert in Python and SQL; strong software engineering practices.
- Deep experience with AWS, Azure, or GCP data/AI platforms.
- Strong understanding of distributed systems, cloud-native architecture, MLOps, platform engineering.
- Hands-on with vector DBs, embeddings, retrieval systems, RAG.
- Experience with CI/CD, orchestration, IaC/automation, observability.
Leadership & Communication:
- Exceptional written/verbal communication.
- Able to translate complex AI/data architecture concepts into mission impact, risk, and tradeoffs.
- Demonstrated ability to influence and drive consensus across stakeholders.
What we'd like you to have
- Prior roles as Principal Engineer, Lead Data Engineer, Solutions Architect, Technical Lead.
- Built/operated enterprise vector search/knowledge management / RAG / LLM platforms.
- Large-scale distributed processing (e.g., Spark/Flink/Beam—whatever aligns to your stack).
- Experience supporting AI adoption in government/defense/intelligence or highly regulated environments.
- Familiarity with AI governance, evaluation frameworks, explainability, responsible AI.
Pay transparency
Please note the targeted compensation range is provided as an estimate, and any actual compensation offer may vary depending on the needs of the company, or an applicant's skillset, competencies, experience, education, certifications, location, or other factors. The estimated range does not include the value of any benefits offered.
About BigBear.ai
BigBear.ai is a leading provider of AI-powered decision intelligence solutions for national security, supply chain management, and digital identity. Customers and partners rely on Bigbear.ai’s predictive analytics capabilities in highly complex, distributed, mission-based operating environments. Headquartered in McLean, Virginia, BigBear.ai is a public company traded on the NYSE under the symbol BBAI. For more information, visit https://bigbear.ai/ and follow BigBear.ai on LinkedIn: @BigBear.ai and X: @BigBearai.
BigBear.ai is an Equal opportunity employer all protected groups, including protected veterans and individuals with disabilities.
Your next step
- Have your CV and examples of relevant work ready.
- Check the listed location, eligibility and core experience before starting.
- Ask the employer about the salary range before committing time to the process.
Complete your application on careers-bigbearai.icims.com. The employer’s form will show what is required.
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Source & posting history
Source notes
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- Pay
No pay amount identified in the saved description.
- Location & working pattern
Reston, Virginia, US
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- Work authorization
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- Status in our records
- Active
- First seen by us
- Sep 15, 2026
- Recorded sightings
- 76
- Last seen by us
- Oct 8, 2026
These dates show when we found the listing. Check the employer’s website to confirm it is still accepting applications.
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