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ML Engineer

Sydney, Australia💼 Full-time🗓 2026-09-20 → 2026-09-25

Core

Build the AI layer's learning loop for a robotics data platform, focusing on evaluations, retrieval, and cost-optimized inference for robot fleet data.

Role type

Applied ML Engineer (LLM systems & robotics data)

Builds

AI agents, evaluation systems, retrieval pipelines, and task-specific models for robot fleets

Domain

Robotics, AI/ML, Data Infrastructure

Deliverable

production ML models

Required skills

Applied ML, LLM systems (evals, retrieval, fine-tuning), Python for production, measurement-driven development

Preferred skills

Custom model training (embeddings, fine-tunes), time-series/sensor data experience, inference cost optimization at scale, open-source contributions

Technologies

Python, LLM frameworks, robotics data stacks

Responsibilities

Build evaluation systems for quality, speed, and cost; optimize retrieval over messy fleet data; reduce inference costs via routing, caching, and distillation; train task-specific models; convert cross-fleet usage into improving datasets and detectors

Seniority

Mid-level, hands-on IC

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