Senior Software AI Engineer
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Build production agent systems with AI capabilities
Design, build, and operate agentic workflows and data pipelines for AI-driven matching and analysis. Ship production agent systems and engineer data pipelines for searchable knowledge bases. Collaborate with organizations across the defense ecosystem.
Why This Role?
Accelerate breakthroughs with AI in defense and public sectors
Key Responsibilities
- Design and build agentic workflows with agent SDKs and MCP servers
- Operationalize LLM quality with eval and observability layers
- Engineer data pipelines for robust ingestion and quality validation
Requirements
- Experience with industry-leading agent SDKs and Agent Skills standards
- Knowledge of Langfuse, golden datasets, and LLM-as-judge patterns
- Familiarity with FinOps-style tracking and cost optimization
Required Skills
Indonesia Context
- Working Hours Overlap:
- Flexible — work your own hours
View Original Description from WeWorkRemotely
Original description from WeWorkRemotely
Headquarters: Minneapolis, MN URL: http://collaboration.ai Who We Are Collaboration.Ai is a mission-focused, AI-powered software and services company based in Minnesota, with employees, partners, and customers around the world. We unite people, technology, and purpose to accelerate breakthroughs that transform industries, empower communities, and create a more sustainable future. We collaborate with organizations across the defense ecosystem, helping them navigate complex challenges and drive transformative change. Our Products NetworkOS — NetworkOS is an AI-powered platform that aligns people, purpose, ideas, and expertise in real-time, generating actionable insights to propel movements forward. CrowdVector — CrowdVector is an integrated solution marketplace and innovation management platform that rapidly uncovers new ideas and advances breakthroughs to fuel movements. To learn more about us, visit collaboration.ai. About the Role You'll build the agentic systems and data pipelines behind NetworkOS's AI capabilities: production agent workflows built on industry-leading agent SDKs and harnesses, MCP servers, and Agent Skills standards; the eval and observability layer that keeps LLM quality measurable; and the ingestion pipelines that turn messy, diverse data sources into queryable knowledge. This is an execution seat, not an ivory tower. You'll commit code every week, ship agents as product capability rather than demos, and help shape a roadmap that's heading deep into graph + agents territory — for customers in defense, public sector, and regulated enterprise. Agents in production. Pipelines that hold. Evals that keep everyone honest. What You'll Do Ship production agent systems — design, build, and operate agentic workflows (agent SDKs, MCP servers, Agent Skills standards) powering AI-driven matching, analysis, and data intelligence Operationalize LLM quality — build the eval and observability layer with Langfuse, golden datasets, LLM-as-judge patterns, and FinOps-style tracking so every workflow has measurable quality, cost, and latency Engineer data pipelines — robust ingestion of documents, structured data, and external sources into searchable knowledge bases with quality validation, deduplication, and incremental updates Own retrieval quality — hybrid search combining vector, keyword, and metadata retrieval, continuously improved through reranking, query expansion, and contextual compression Accelerate with AI — build custom MCP tools and Agent Skills that make the whole engineering team measurably faster Execute alongside the team — pair with full-stack engineers on AI integration points, contribute to incident response for AI services, and keep your hands in the code Our Tech Stack Languages: Python (primary); Kotlin (core platform language at CAI); TypeScript/Node.js and other modern languages (secondary) AI/ML: FastAPI, Pydantic; multi-provider LLM SDKs (Anthropic, OpenAI, and others) Agentic Tooling: Claude Code/Codex/etc.; industry-leading agent SDKs and harnesses; MCP servers; Agent Skills standards LLM Operations: Langfuse + evals (golden datasets, LLM-as-judge); in-house FinOps tracking (token usage, latency, cost); multi-provider orchestration including AWS Bedrock Search & Retrieval: Vector databases, OpenSearch, embedding models Data: PostgreSQL, Amazon S3; streaming pipelines (Kafka/Kinesis) where needed Infrastructure: Docker, Kubernetes (AWS EKS); DataDog + OpenTelemetry observability What We're Looking For Must-Haves 7+ years of professional software engineering experience, with 3+ years focused on AI/ML or data engineering Production agentic/LLM application experience — built and operated systems around LLM APIs (Anthropic, OpenAI) serving real users: agents, tool-use, or orchestrated LLM workflows Data engineering background — robust, scalable pipelines for AI/ML workloads LLM operations experience — evals and observability for production LLM systems (quality, cost, latency) Production retrieval experi
Hiring at Collaboration.Ai
Collaboration.Ai has 1 other active role on LokerDollar and has been hiring here since Sep 4, 2026 — across AI, Engineering.
View all Collaboration.Ai openings →Frequently asked questions
- Is Senior Software AI Engineer at Collaboration.Ai a remote job?
- Yes. Senior Software AI Engineer at Collaboration.Ai is a fully remote role open to candidates worldwide.
- What type of employment is Senior Software AI Engineer at Collaboration.Ai?
- This is a full time position.
- How do I apply?
- Click the "Apply" button on this page to go to the official application at Collaboration.Ai.
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