Research Engineer, Synthetic Data
clera · Singapore
Job description
About the role
This is a hands‑on research engineering role focused on building synthetic data pipelines that turn real‑world, domain‑specific workflows into structured training tasks for AI agents. You will join a small, high‑caliber engineering team of Olympiad medalists and published researchers, working at the core of a platform that powers reinforcement learning environments and post‑training data for AI labs.
Key responsibilities
- Design and build end‑to‑end synthetic data pipelines that convert domain‑specific workflows into realistic, challenging training tasks.
- Collaborate with subject‑matter experts to produce synthetic tasks for AI agents across professional and technical domains.
- Develop task generation methods that maximize diversity, realism, and learnability.
- Build tooling to mutate, validate, and iteratively improve synthetic tasks at scale.
- Analyze model and agent performance on synthetic tasks to identify what they teach and where they break down.
- Define and implement metrics to quantify synthetic task quality across diversity, realism, and learnability dimensions.
Required profile
- 2 to 4 years of experience in software engineering, machine learning engineering, or AI research, focusing on data pipelines, ML infrastructure, or synthetic data systems.
- Proficiency in Python and hands‑on experience with Docker and Linux environments.
- Demonstrated experience applying synthetic data research methods to build generation pipelines end‑to‑end.
- Strong understanding of synthetic data quality criteria, including diversity, realism, and learnability, and their limitations.
- Experience designing, implementing, or maintaining evaluation frameworks, benchmarks, or testing environments for AI agents or large language models.
- Track record of independently owning and delivering technical projects with minimal predefined requirements or roadmap.
- Sharp eye for edge cases, subtle inconsistencies, and quality issues in synthetic or algorithmically generated datasets.
- Familiarity with reinforcement learning paradigms, agentic AI workflows, or LLM post‑training pipelines is a plus.
- Strong communication skills for effective collaboration across time zones.
Required skills
- Python
- Docker
- Linux
What we offer
- Salary range $150,000–$250,000 USD annually.
- Visa sponsorship available.
- On‑site work location in Singapore.
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Published 4 hours ago
Expires 1 month from now
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clera
Singapore
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