LLM Application Engineer
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MidFull-time
#411413·Dodano 9 dni temu·0
Źródło: BjakTech Stack / Keywords
LLMAIDatabasesBackendPythonOpenAIPyTorchGenerative AI
Firma i stanowisko
There are over 5 billion users using basic applications today such email, notes, tasks that are not AI-native. Our mission is to build a proactive smart assistant for everyday users to bring intelligence to conversations, errands, organising and workflows, with minimal prompting.
Our product focuses on achieving high reliability for long-running workflows, persistent context, and real-world task completion. The system must handle multi-step reasoning, interact with external tools, and remain reliable despite non-deterministic model behavior. Our objective is to help users complete tasks daily enjoyable with over ~90%* reduced time.
Wymagania
- Strong software engineering fundamentals with experience building AI-powered applications
- Hands-on experience with LLMs, generative AI, or agent-based systems
- Experience designing prompts, workflows, evaluations, or AI behaviour
- Ability to write clean, production-quality code
- Comfortable working across abstraction layers (model → system → product)
- Strong problem-solving skills in ambiguous, fast-moving environments
- Bias toward shipping, iteration, and continuous improvement
Obowiązki
- Build and ship LLM-powered applications and AI agent workflows
- Design systems for reasoning, planning, memory, tool use, and multi-step execution
- Build reliable orchestration pipelines that convert probabilistic model outputs into predictable, observable, and safe actions
- Integrate LLMs with APIs, databases, search, internal services, and external tools
- Develop prompting, context engineering, structured outputs, tool-calling, and other techniques to improve model behaviour
- Build evaluation frameworks and datasets to measure AI quality, reliability, and regressions
- Debug AI systems across the entire stack—from model behaviour and prompts to orchestration, backend services, and product UX
- Optimise AI systems for quality, latency, and cost
- Work closely with product and engineering teams to convert ambiguous product problems into working AI solutions
- Establish production practices for observability, tracing, experimentation, evaluation, and continuous improvement
Bjak
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