Junior LLM / Agents Engineer - Systematic Commodities Hedge Fund
Moreton Capital Partners
- Employment
- Full-time
- Seniority
- Junior
About the role
Junior LLM / Agents Engineer – Systematic Commodities Hedge Fund
Moreton Capital Partners is seeking a Junior LLM / Agents Engineer to help build internal AI systems that accelerate research, trading, and decision-making across our systematic commodities platform.
We trade global commodity futures using machine learning and institutional-grade infrastructure. A growing portion of our edge comes from automation: faster research workflows, better signal interpretation, and richer alternative data.
This is not a “chatbot” role.
You will be building production AI tools that directly support live trading capital.
What you will work on
- Internal research copilots that explain signals, model outputs, and portfolio positioning to traders and quants
- Signal/model assistants that summarize why trades are firing and highlight changes in exposures or regime shifts
- Automated news briefings that generate daily/real-time summaries for commodities, macro, and sector-specific events
- News sentiment and event extraction pipelines to create structured features for ML models
- Alternative data enrichment, turning unstructured text (news, reports, filings) into quantitative inputs
- Natural-language querying of internal databases (ask questions directly against signals, backtests, and risk data)
- Workflow agents that automate repetitive research and ops tasks across Slack, Notion, Sheets, and internal tools
- Integrations with tools such as Clawdbot, OpenAI/Claude APIs, LangChain, LlamaIndex, vector databases, and internal Python services
Key Responsibilities
- Design and deploy LLM-powered systems embedded directly into research and trading workflows
- Build RAG pipelines over proprietary research, backtests, signals, and documentation
- Develop agents that call APIs, query databases, and automate multi-step tasks
- Convert unstructured text/news into structured features for quantitative models
- Evaluate quality, latency, and cost of model pipelines
- Productionize systems with monitoring, guardrails, and logging
- Collaborate closely with quant devs and researchers to ship tools that save real time
Requirements
- Strong Python fundamentals
- Experience using LLM APIs (OpenAI, Anthropic, or similar)
- Familiarity with agent frameworks (LangChain, LlamaIndex, CrewAI, etc.)
- Comfortable working with APIs, databases, and backend services
- Practical builder mindset — able to ship useful tools quickly
- Self-starter who thrives in a lean, high-ownership environment
- Degree in CS/Engineering or equivalent hands-on experience
Bonus Points For
- NLP or text analytics experience (sentiment, classification, embeddings)
- Vector databases (Pinecone, Weaviate, Chroma, etc.)
- Data engineering or backend experience
- Exposure to markets, commodities, or systematic trading
- Cloud (AWS), Docker, CI/CD
Benefits
- Performance bonus tied to firm growth and personal performance (up to 3x salary)
- High ownership and rapid responsibility
- Direct exposure to traders, quants, and live capital
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