About the role
Our Mission
Reflection’s mission is to build open superintelligence and make it accessible to all.
We’re developing open weight models for individuals, agents, enterprises, and even nation states. Our team of AI researchers and company builders come from DeepMind, OpenAI, Google Brain, Meta, Character.AI, Anthropic and beyond.
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 build superintelligence that is truly open, you need to start at the foundation. Joining Reflection means building from the ground up as part of a small talent-dense team. You will help define our future as a company, and help define the frontier 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 the best talent globally.
Health & wellness: Comprehensive medical, dental, vision, life, and disability insurance.
Life & family: Fully paid parental leave for all new parents, including adoptive and surrogate journeys. Financial support for family planning.
Benefits & balance: paid time off when you need it, relocation support, and more perks that optimize your time.
Opportunities to connect with teammates: lunch and dinner are provided daily. We have regular off-sites and team celebrations.
Aplyr's read
Reflection AI leverages artificial intelligence to foster personal and professional growth, attracting talent passionate about innovation in reflective practices.
What's promising
- •Focuses on AI-driven reflective practices, a niche with growing demand.
- •Recent hiring in diverse roles indicates robust growth and expansion.
- •Commitment to privacy and compliance is evident with dedicated legal roles.
What to watch
- •Limited public information about company culture and work-life balance.
- •High specialization may limit appeal to broader tech talent pool.
- •Potential challenges in scaling reflective AI solutions globally.
Why Reflection AI
- •Specializes in AI for personal and professional growth through reflection.
- •Diverse roles suggest a multidisciplinary approach to AI development.
- •Emphasis on sovereign engagement indicates focus on regional markets.
Aplyr’s read is generated by AI from public sources. Was it useful?
About Reflection AI
Reflection is a company focused on harnessing artificial intelligence to enhance personal and professional growth through reflective practices.
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