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Member of Technical Staff - Data Ingestion Engineer

Join Reflection AI as a Data Ingestion Engineer to build and operate large-scale data ingestion systems for AI model training.

Location
San Francisco, CA
Compensation
Not disclosed
Level
staff
Type
full time · Hybrid

Posted by employer 2 months ago

First seen on Joblaze 1 week ago

Last verified on the company career page 4 hours ago

Apply at Reflection AI → Save job Scanned from reflection.ai

Skills & Technologies

Ray Beam Spark Flexible on stack

Requirements

Visa
Sponsorship available

Not disclosed in this posting: compensation, years of experience.

Benefits

Team Building Activities Unlimited PTO Equity/Stock Options Health Insurance Parental Leave

Joblaze summary

In this role, the Data Ingestion Engineer at Reflection AI focuses on building and maintaining systems that transform large-scale data sources into structured datasets for AI model training. Proficiency in technologies like Ray, Beam, or Spark is essential, along with a strong understanding of how training data affects model performance. This position is well-suited for engineers with a background in distributed systems who enjoy a hybrid of research and engineering tasks. The team emphasizes collaboration with researchers and other functions to drive impactful data-driven improvements.

Joblaze insights

Quick facts

Is the Member of Technical Staff - Data Ingestion Engineer role remote?
It's hybrid — Reflection AI expects some on-site time in San Francisco, CA.
Where is the role based?
Reflection AI is hiring for this position in San Francisco, CA.
What's the tech stack?
Joblaze extracted these technologies from the posting: Beam, Ray, Spark.
Does Reflection AI sponsor work visas for this role?
Yes — the posting indicates visa sponsorship is available for the right candidate.
What seniority level is this role?
Reflection AI targets staff-level candidates for this position.
Is this full-time or contract?
Full-time for this Member of Technical Staff - Data Ingestion Engineer role at Reflection AI.

From the original posting

Our Mission

Reflection is a research lab making intelligence open and accessible for everyone to use, customize, and build on. We build open models that let anyone control their intelligence and help shape the future of AI. Our mission: make intelligence open and accessible to all.

About the Role

Data is playing an increasingly crucial role at the frontier of AI innovation. Many of the most meaningful advances in recent years have come not from new architectures, but from better data.

As a member of the Data Team, your mission is to build and operate the ingestion systems that turn the open web and other large-scale data sources into reliable, well-structured corpora for training frontier models. You will own the machinery that acquires, extracts, normalizes, versions, and delivers data to our pre-training pipelines. You’ll work directly with world-class researchers to close the loop between what we collect and how it impacts model performance.

This role is ideal for engineers who love building robust distributed systems, but who also want to run experiments, reason about tradeoffs in data acquisition, and iterate quickly based on measurable impact.

Working closely with our pre-training and data quality teams, you will:

  • Build and operate large-scale data ingestion systems for pre-training, including web crawling, extraction, and dataset delivery

  • Run experiments to evaluate crawling strategies, extraction methods, and ingestion tradeoffs

  • Analyze ingested data to identify gaps, redundancy, and areas to improve

  • Build ingestion pipelines that scale reliably across large data campaigns

  • Develop specialized crawlers for high-priority data sources

  • Review code, debug production issues, and continuously improve ingestion infrastructure

About You:

  • Curious about how training data influences model capabilities, and can iterate quickly based on measurable downstream impact

  • Able to collaborate tightly across functions: researchers, infra, operations, and external partners.

  • Enjoy working in a hybrid research–engineering role

Skills and Qualifications:

  • Experience building web crawling, data ingestion, or large-scale data acquisition systems using Ray, Beam, Spark, or similar technologies.

  • Familiarity with how LLMs are trained and evaluated, and an intuition for what makes data useful for training

  • Comfortable working with very large datasets (multi-TB to PB scale) and building systems that are observable, testable, and maintainable

  • Comfortable designing experiments and using data to guide system improvements

  • Excellent communication skills. You can explain system behavior. You consider and communicate tradeoffs clearly

What We Offer:

We believe that to make intelligence open and accessible to all, you need to start at the foundation. Joining Reflection means building from the ground up as part of a talent-dense team. You will help define our future as a company, and help define the future of open foundational models.

We want you to do the most impactful work of your career with the confidence that you and the people you care about most are supported.

  • Top-tier compensation: Salary and equity structured to recognize and retain our talent globally.

  • Stock options: Everyone who joins and contributes to Reflection's success gets to share in the upside through stock options.

  • Health & wellness: Comprehensive medical, dental, vision, and life, with an annual wellness allowance.

  • Meals: Lunch and dinner are provided in the office daily.

  • Life & family: 22 weeks paid parental leave for all new birthing and non-birthing parents, including adoptive and surrogate journeys.

  • Vacation days: Unlimited paid time off in the U.S. and 30 days in the U.K.

  • Sponsorship support: We sponsor visas to help exceptional talent join our team and support long-term immigration pathways where applicable.

  • Team building: We have regular off-sites, happy hours, and team celebrations.

Export Control Notice: This position may require access to technology or source code subject to the U.S. Export Administration Regulations. Any offer of employment for this role may be conditioned on the Company's ability to provide the candidate with access to such technology or source code in compliance with applicable U.S. export control laws, which may require the Company to seek government authorization.

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