Senior AI/ML Data Engineer

Boeing Intelligence and Analytics

$242K — $305K *
Enterprise Technology
15+ years of experience
Job Overview by Ladders

Qualifications

  • 20 years of experience in AI/ML, Data, or Software Engineering roles.
  • Active TS/SCI with CI Polygraph security clearance.
  • Expert proficiency in Python, SQL, and modern software engineering practices.
  • Deep experience with Azure, AWS, or Google Cloud data and AI platforms.
  • Strong understanding of distributed systems, cloud-native architectures, MLOps, and AI platform engineering.

Responsibilities

  • Architect, build, and maintain AI data platforms for enterprise applications.
  • Establish controls for data quality, lineage, and AI output evaluation.
  • Lead architectural decisions balancing performance and security in data infrastructure.
  • Partner with various tech teams to implement production-grade AI capabilities.
  • Translate technical AI concepts for senior leadership's operational understanding.
  • Coordinate AI initiatives across multiple organizations to maximize reuse.
  • Implement monitoring and observability for continuous improvement of AI platforms.

Benefits

  • Hybrid work availability (minimum 2-3 days onsite).
  • Opportunity to work on cutting-edge AI technologies and solutions.
  • Mentorship and technical leadership opportunities.
  • Collaboration with cross-functional teams in a dynamic environment.
Full Job Description
Senior AI/ML Data Engineer

KEY RESPONSIBILITIES
  • Enterprise AI Platform Engineering: Architect, build, and maintain enterprise-scale data platforms supporting vector databases, semantic search, Retrieval-Augmented Generation (RAG), Agentic AI systems, and large language model applications.
  • Data Architecture & Strategy: Establish and implement controls for data quality, lineage, source attribution, prompt and context traceability, explainability, and evaluation of AI system outputs.
  • AI Data Governance: Establish and implement controls for data quality, lineage, source attribution, prompt and context traceability, explainability, and evaluation of AI system outputs.
  • Technical Leadership: Lead architectural decision-making for AI-supporting data infrastructure, balancing performance, scalability, security, reliability, maintainability, and cost considerations.
  • Cross-Functional Integration: Partner with Data Scientists, Machine Learning Engineers, Architects, Cybersecurity teams, and Software Engineers to translate AI requirements into production-grade capabilities.
  • Executive Communication: Translate highly technical AI, machine learning, and data architecture concepts into clear operational impacts, risks, opportunities, and implementation considerations for senior leadership.
  • Enterprise Coordination: Coordinate with stakeholders across multiple organizations to align AI initiatives, maximize reuse of enterprise capabilities, and eliminate duplication of effort.
  • Operational Excellence: Implement monitoring, observability, and alerting to ensure the reliability, performance, and continuous improvement of AI-supporting data platforms.
  • Mentorship & Engineering Excellence: Provide technical leadership and mentorship to engineers while promoting engineering best practices and innovation across the organization.
  • Technology Evaluation: Assess emerging AI technologies, vector database platforms, retrieval frameworks, and engineering approaches to improve organizational AI capabilities.

Experience and Qualifications:

To be eligible for this demanding position, the ideal candidate should demonstrate the following experience and qualifications:

Required Education and Years of Experience:
  • 20 Years of experience in AI/ML, Data, or Software Engineering roles or a highly related field of work with similar scope and responsibilities.
  • A Bachelor's degree may be substituted for 4 years of experience and a Master's Degree may be substituted for 6 years of experience.

Required Qualifications:
  • Active TS/SCI with CI Polygraph
  • Expert proficiency in Python, SQL, and modern software engineering practices.
  • Deep experience with Azure, AWS, or Google Cloud data and AI platforms.
  • Strong understanding of distributed systems, cloud-native architectures, MLOps, and AI platform engineering.
  • Experience implementing vector databases, embedding pipelines, retrieval systems, and Retrieval-Augmented Generation architectures.
  • Experience with CI/CD pipelines, orchestration platforms, infrastructure automation, and observability tooling.

Desired Qualifications:
  • Proven experience designing and delivering enterprise-scale AI, machine learning, generative AI, or Agentic AI solutions.
  • Demonstrated success architecting and implementing production cloud-native data systems supporting advanced analytics and AI workloads.
  • Proven experience working within complex enterprise environments managing security, infrastructure, technology dependencies, governance requirements, and competing priorities.
  • Extensive experience designing data pipelines supporting machine learning models, vector databases, semantic search capabilities, and generative AI applications.
  • Proven experience delivering complex technical solutions from strategic requirements through operational deployment while balancing schedule, performance, capability, and cost objectives.
  • Experience building and operating enterprise-scale vector search, RAG, knowledge management, and LLM-based platforms.
  • Experience supporting AI adoption efforts within large government, defense, intelligence, or highly regulated organizations.


Telework/Remote Availability: Hybrid work authorized (minimum 2-3 days onsite)

Work Location(s): Washington, DC or Reston, VA

Contingent Upon Program Award

The position is contingent upon program award.

Summary Pay Range:

Please note that the information shown below is a general guideline only. Pay is based upon candidate experience and qualifications, as well as market and business considerations.

$242,000 - $305,000

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