AI Systems Engineer (Multi-Agent & Conversational Intelligence)
Bütçe: $50.0 - $75.0
HOURLY / FULL_TIME
⭐ 4.97 (48)
United States
python, natural-language-processing, api-integration
Preferred qualifications
- Experience: Expert
We are building a consumer-facing mobile product that blends habit formation, interactive systems, and AI-driven conversational experiences.
The product uses a multi-agent AI architecture, where distinct AI "characters" (each with defined roles, tone, and expertise boundaries) guide users through different domains of the experience.
We're looking for an AI Systems Engineer to own the design, reliability, and evolution of this conversational layer.
This role is NOT for someone who wants to quickly build another chatbot.
This role is for someone who is looking for a slightly crazy opportunity at the edge of innovation, working with an extensively-connected, world-renowned team of neurologists, marketers, public health advocates, designers, and developers.
CORE RESPONSIBILITIES
MULTI-AGENT ROUTING AND ORCHESTRATION
Design and maintain logic that routes user queries to the appropriate AI agent based on:
- Topic detection
- Direct addressing
- Conversation continuity
Ensure agents stay within clearly defined expertise boundaries
Implement smooth, explainable handoffs between agents when topics shift
Prevent "agent drift" or overlapping responsibilities
AGENT BEHAVIOUR, TONE AND GUARDRAILS
Implement and refine:
- Agent-specific personalities
- Tone and response constraints
- Few-shot prompting patterns
Ensure responses are:
- Supportive, accurate, and grounded
- Non-diagnostic and non-alarmist
- Consistent with each agent's intended role
Balance expressiveness with reliability and safety
KNOWLEDGE RETRIEVAL AND CONTEXTUAL ANSWERING
Own the retrieval pipeline for expert reference materials (e.g. documents, guides, research summaries)
Ensure retrieved information is:
- Relevant
- Used selectively (not dumped verbatim)
- Appropriately contextualised
Reduce hallucinations through retrieval discipline and prompt design
Support real-time updates to the knowledge base without redeploying code
CROSS-FUNCTIONAL COLLABORATION
You will collaborate with:
- Mobile engineers (to expose AI capabilities cleanly in the app)
- Interactive / game developers (to trigger AI responses from system events)
- Product and content teams (who manage agent configuration and reference materials)
REQUIRED SKILLS
Strong experience building LLM-powered systems beyond basic chat
Hands-on experience with:
- Multi-agent or tool-routed AI systems
- Prompt engineering with guardrails
- Retrieval-augmented generation (RAG)
Deep understanding of:
- Context window tradeoffs
- Hallucination mitigation
- AI safety in user-facing products
Ability to explain technical decisions clearly to non-technical teammates
Pragmatic, product-minded approach (clarity and trust over novelty)
BONUS SKILLS
Experience with:
- Conversational UX
- Voice/text-to-speech systems
- Health-, education-, or behaviour-change products
Familiarity with game-adjacent or interactive AI use cases
Strong opinions on AI reliability and user trust (with the ability to justify them)
WHAT SUCCESS LOOKS LIKE
After the first 1-2 months:
- Agent routing is predictable, explainable, and testable
- Responses feel intentional and bounded, not "chatbot-like"
- Content updates can be made safely without breaking behaviour
- Failures are obvious and controlled, not silent
After 3-4 months:
- The AI layer becomes a durable, extensible product asset
- New agents, features, and tiers can be added without re-architecture
- AI costs and performance are predictable
- Users trust the system and use it every day
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