Forward-Deployed Data Engineer — Synthetic Data Architect

Neura Market

New York, Northern (NY, KY)

Hybrid

USD 180,000 - 320,000

Full time

14 days+
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Job summary

Snorkel AI is hiring a Forward Deployed Engineer focused on Synthetic Data Generation to collaborate with leading AI labs and enterprises on critical AI initiatives. You will architect scalable synthetic data pipelines, translate data challenges into deployable solutions, and lead engagements from discovery to production delivery.

You will drive production-grade data strategies, establish reusable patterns across engagements, and mentor engineers while collaborating with customers and

Qualifications

  • 5+ years of experience in machine learning engineering, data science, applied AI, forward deployed engineering, or a similar technical role.
  • Strong Python skills and experience building reliable production data or ML systems, including containerizing with Docker and deploying on cloud platforms (e.g., AWS, GCP, or Azure).
  • Hands‑on experience with LLMs—building model-based applications and data workflows with the modern GenAI/LLM stack, and integrating systems, models, and data sources through APIs.
  • Strong understanding of ML experimentation and evaluation, including defining metrics and using empirical results to guide technical decisions.
  • Experience building synthetic data, data augmentation, or model‑generated training and evaluation datasets.
  • Experience with LLM evaluation techniques, including LLM‑as‑a‑judge, model‑based evaluation, rubric‑based evaluation, or custom evaluators.
  • Demonstrated ability to take ambiguous technical problems from problem definition through delivery, with strong technical communication and experience working directly with customers and cross‑functional stakeholders.
  • Experience serving as a technical lead—setting technical direction, driving architecture and key decisions, mentoring engineers, and creating reusable approaches that influence broader engineering or product outcomes.

Responsibilities

  • Design and build scalable synthetic data generation, transformation, filtering, and evaluation pipelines for complex AI use cases.
  • Translate model objectives, failure modes, and data gaps into synthetic data strategies, experiments, and technical specifications.
  • Develop LLM- and ML-assisted workflows to generate high-quality training and evaluation datasets across targeted behaviors, domains, and edge cases.
  • Build automated evaluators, quality checks, and measurement frameworks to assess correctness, relevance, diversity, coverage, and adherence to customer requirements.
  • Design and run experiments to measure the impact of synthetic data on downstream model performance and iteratively improve generation approaches.
  • Package and deliver production-grade datasets with standardized formats, quality assurance, and clear documentation.
  • Lead technical workstreams from initial solution design through production delivery, navigating ambiguity and making sound technical decisions.
  • Build, refine, and iterate on solutions that address customer needs, incorporating feedback to ensure the delivered work provides tangible value.
  • Rapidly prototype and productionize solutions across models, data pipelines, APIs, and custom applications.
  • Communicate technical tradeoffs, experimental results, and recommendations clearly to technical and cross-functional stakeholders.
  • Serve as a trusted technical partner to customers and internal delivery teams, resolving complex blockers and driving alignment.
  • Identify recurring patterns across customer engagements and turn successful solutions into reusable pipelines, evaluators, tooling, and best practices.
  • Define and improve technical standards for synthetic data generation, experimentation, evaluation, and delivery.
  • Partner with DaaS Engineering and Product teams to influence platform and product capabilities based on real-world customer needs.
  • Lead technical design reviews, share expertise, and provide guidance to other engineers.
  • Stay current with emerging synthetic data, LLM evaluation, and data curation techniques and assess their applicability to customer problems.

Skills

Python
Cloud platforms
LLMs & AI
ML experimentation
API integration
Customer collaboration

Tools

Docker
AWS
GCP
Azure

Job description

Snorkel AI is hiring a Forward Deployed Engineer focused on Synthetic Data Generation to collaborate with leading AI labs and enterprises on critical AI initiatives. You will architect scalable synthetic data pipelines, translate data challenges into deployable solutions, and lead engagements from discovery to production delivery.

You will drive production-grade data strategies, establish reusable patterns across engagements, and mentor engineers while collaborating with customers and

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