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Senior Software Engineer​/Developer - AI

Job in Washington, District of Columbia, 20022, USA
Listing for: Pyramid Systems, Inc.
Full Time position
Listed on 2026-07-04
Job specializations:
  • Software Development
    AI Engineer (Applied/Software), Software Architect, DevOps
Salary/Wage Range or Industry Benchmark: 166091 - 210000 USD Yearly USD 166091.00 210000.00 YEAR
Job Description & How to Apply Below

Overview

The Senior Principal Software Engineer/Developer – AI serves as a senior, hands‑on full‑stack AI engineer and technical authority, leading the technical strategy, design, and delivery of large‑scale mission‑critical AI systems supporting federal programs (e.g., HUD, AIR platform). This role combines senior technical leadership, hands‑on expertise in Python‑based AI/ML systems (including large language models), and ownership of enterprise architecture, governance, and innovation.

Responsibilities
  • Serve as the primary technical authority, defining AI and application architecture across multiple programs
  • Establish enterprise modernization roadmaps aligned to mission outcomes, compliance, and scalability
  • Lead architecture for distributed, cloud‑native, and hybrid AI systems
  • Define and enforce reference architectures, standards, and reusable frameworks
  • Drive cross‑program technical decision‑making to ensure interoperability, security, and long‑term sustainability
  • Advise senior federal stakeholders (SES‑level and above) on AI adoption, modernization, and risk management
  • Lead design, development, and deployment of advanced AI solutions using Python as the primary development language, including large language models (LLMs) and foundation models, Retrieval‑Augmented Generation (RAG) systems, agentic workflows, and orchestration frameworks
  • Architect and implement scalable ML systems and services built on Python‑based frameworks and APIs
  • Build full‑stack AI applications end to end, from user‑facing interfaces to back‑end services, APIs, and data layers
  • Integrate AI and LLM capabilities into existing enterprise applications and legacy platforms (e.g., content management, case management, and records systems) via APIs, middleware, and event‑driven patterns
  • Define and implement distributed training strategies (GPU/TPU clusters, parallelization, optimization)
  • Oversee full ML lifecycle in partnership with the Senior Data Scientist: data pipelines, feature engineering, training, evaluation, deployment, and monitoring
  • Drive model optimization techniques (quantization, distillation, caching) to improve performance and cost
  • Establish robust MLOps practices leveraging Python‑driven automation, pipelines, and tooling
  • Stand up the enterprise CI/CD‑to‑AI/MLOps pipeline, beginning with time‑boxed proofs of concept and MVP implementations that mature into production systems
  • Serve as subject matter expert in federal AI policy (e.g., NIST AI RMF, OMB M‑25‑21 and M‑25‑22, Executive Order 14179)
  • Define and operationalize Responsible AI frameworks, including model validation and evaluation, bias mitigation and fairness, and explainability, auditability, and safety
  • Ensure compliance with FISMA, FedRAMP, NIST 800‑53, privacy, and Section 508 requirements
  • Lead large‑scale modernization initiatives (e.g., legacy‑to‑cloud, microservices transformation, including Python‑based refactoring and re‑platforming efforts)
  • Define repeatable modernization frameworks and accelerators
  • Oversee Dev Sec Ops  pipelines, CI/CD automation, zero‑trust architectures, and secure software supply chain practices
  • Ensure delivery of resilient, high‑availability systems in regulated federal environments
  • Lead multiple concurrent engineering efforts across integrated teams
  • Provide technical leadership to architects, engineers, and Dev Sec Ops  specialists, including establishing Python coding standards and engineering best practices
  • Mentor senior engineers and technical leaders; elevate engineering excellence and code quality
  • Support technical strategy in proposals, captures, and client engagements
  • Contribute to thought leadership (whitepapers, architecture patterns, platform strategy)
  • Expert‑level proficiency in Python, including building large‑scale AI/ML systems, APIs, and data pipelines
  • Full‑stack engineering skills, including front‑end frameworks, back‑end services, RESTful APIs, microservices, and cloud‑native deployment (e.g., containers, Kubernetes)
  • Deep expertise in machine learning and deep learning, particularly transformer‑based models and LLMs
  • Hands‑on experience with ML frameworks (PyTorch, Tensor Flow, JAX) and distributed training (Deep Speed, FSDP, Horovod)
  • P…
Position Requirements
10+ Years work experience
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