Senior AI Agent Engineer
Planera- Location
- United States
- Workplace
- Remote
- Employment
- Full Time
- Salary
- —
Posted 2mo ago
About the Role
Join Planera to build Manny, our AI scheduling assistant, and shape how construction schedulers work with AI on a modern Critical Path Method platform.
You will own agent features end to end
designing and evolving the LangGraph/LangChain agent, engineering prompts and tools, integrating LLMs across providers, and holding response quality to a high bar with a real evaluation and observability stack. This is a hands-on applied AI role with a strong software engineering foundation and a focus on reliability, behavior quality, and user impact. You will work directly with the CTO and the lead AI engineer.
Key Responsibilities
- Design, build, and own Manny features end to end across the agent backend, tools, and UI
- Improve agent behavior, reliability, and answer quality through prompt engineering, tool design, and changes to the agent control flow
- Evolve the agent architecture: ReAct loop, routing and controller logic, multi-node graphs, tool selection, and streaming responses
- Integrate and tune LLMs across providers (Anthropic, OpenAI, Google), balancing quality, latency, and cost, including prompt caching and model selection
- Design and extend Manny's tool surface through the MCP server that connects the agent to Planera's scheduling services
- Build and own the evaluation loop: golden datasets, automated evaluators, snapshot-based replay, and offline and online quality metrics
- Implement observability for agent runs with tracing, metrics, and structured logging, and use it to debug and improve behavior in production
- Ensure safe, sandboxed execution of model-generated code and safe handling of tool side effects and mutations
- Collaborate with product, backend, and frontend to deliver AI features end to end
Requirements
- 4+ years of software engineering experience, including recent hands-on work building production LLM features.
- Strong proficiency in Python building production services
- Hands-on experience building agentic systems with LLMs: tool and function calling, ReAct or similar loops, and orchestration frameworks such as LangChain/LangGraph
- Practical prompt engineering skill: shaping model behavior reliably, debugging failures from traces, and managing large prompts and token cost
- Experience evaluating LLM systems: building datasets, writing evaluators, catching regressions, and using tracing and observability tooling
- Experience with the Model Context Protocol (MCP) or building tool and function-calling integrations for LLMs
- Solid understanding of API design (REST, websockets, SSE and streaming) and interservice communication
- Product mindset with a focus on user impact and pragmatic tradeoffs
- Excellent remote communication skills
Preferred
- Experience with MongoDB and Redis
- Cloud experience (AWS or GCP), containers, and CI/CD
- Go experience, as most of our backend systems are written in Go, including the MCP tool server
- Practical experience with retrieval and augmentation (RAG), embeddings, and vector stores
- Familiarity with LangSmith or comparable LLM evaluation and tracing platforms
- Frontend or React familiarity for agent UI work
- Domain knowledge in construction tech, project management, or scheduling
Tech Stack
Python (Flask), Go, LangGraph/LangChain, LangSmith, MongoDB, Redis, S3, REST/websockets/SSE, Docker, AWS/GCP, Terraform, GitLab CI/CD
Why Join Us
Impact
Be at the forefront of transforming a $12.1 trillion industry. Build the AI that changes how the world plans and schedules construction.
Culture
Join a smart, spirited team dedicated to innovation and excellence.
Growth
Opportunity for professional growth and career advancement in a fast-paced start-up environment.
Benefits
Competitive salary, stock options, benefits package, and a dynamic work environment.
Skills
- LangGraph
- LangChain
- LLM
- Prompt Engineering
- React
- Anthropic
- OpenAI
- Model Context Protocol
- Python
- WebSockets
- MongoDB
- Redis
- AWS
- GCP
- Go
- Retrieval-Augmented Generation
- Embeddings
- LangSmith
- Flask
- S3
- Docker
- Terraform
- GitLab CI
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