Member of Technical Staff - Data Engineering

Albs Labs GmbH

Freiburg im Breisgau

Hybrid

EUR 120.000 - 180.000

Vollzeit

Vor 6 Tagen
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Benefits dieser Stelle

Equity
Remote-friendly work
Support to publish at conferences

Zusammenfassung

Albs Labs GmbH in Freiburg, Germany, is seeking staff/senior IC researchers and engineers to build real-time multimodal data platforms powering on-device AI. You will work on data ingestion, storage, and pipelines for pre-training, post-training, and evaluation, collaborating closely with the research team.

You will contribute to scalable data pipelines (Spark/Ray/Dask/Beam) on terabyte-to-petabyte datasets, focusing on speed, cost, and data quality, with opportunities to publish and influence

Qualifikationen

  • Several years of experience building large-scale data systems in industry or research.
  • Proficient Python programming; strong in Rust or C++.
  • Experience with distributed data processing on terabyte to petabyte datasets.
  • Experience building data pipelines for ML training, incl. tokenization and GPU-based filtering.
  • Ability to write tests and implement monitoring for data pipelines.
  • Bonus: experience with multimodal data, synthetic data generation, GDPR/EU AI Act governance.

Aufgaben

  • Build the data platform behind models: ingestion, storage and processing for pre-training, post-training and evaluation.
  • Scale pipelines for petabyte-scale text corpora: crawling, extraction, deduplication, quality filtering, decontamination against benchmarks.
  • Create synthetic data and rephrasing pipelines with research team; measure impact.
  • Ensure data reproducibility and compliance: versioning, lineage, dataset cards, licensing, PII handling.
  • Keep GPUs fed with high-throughput data loading and streaming for multi-node training.
  • Develop dataset visualization and QA tooling for researchers to inspect data before training.
  • Collaborate with research on data mixtures and ablations and run experiments quickly.

Kenntnisse

Python
Rust or C++
Distributed data processing
ML data pipelines
Testing & monitoring
GDPR/EU AI Act knowledge

Tools

Spark
Ray
Dask
Beam
Parquet
Arrow

Jobbeschreibung

About us

Albs is an AI research lab building real-time multimodal intelligence for machines, enabling them to see, hear, reason, and interact. We treat model architecture, inference, and runtime as one system. Our purpose-built models and optimized runtimes unlock the full potential of each device within defined limits for hardware cost, power consumption, and response time. Companies can adapt our technology to their own machines without building the underlying AI from scratch.

We founded Albs at the intersection of LLM architecture research and on-device engineering, and we are currently in stealth, but well funded, with dedicated compute for large-scale training and experimentation. Publishing is a core part of our research culture, and we contribute our work to top venues. We share more details about the company, the team and our backing in the first conversation.

Who we're looking for

This is a Staff / Senior IC role. We are looking for experienced researchers and engineers, typically with several years of research or industry experience or an equivalent track record. The exact scope of each role depends on your background: some people go deep on one part of the stack, others shape the technical direction of a whole area. We agree on scope together with you during the interview process. We welcome applications from all qualified candidates, regardless of gender, age, ethnic origin, religion, disability or sexual orientation.

What you'll work on
  • Build the data platform behind our models: ingestion, storage and processing for pre-training, post‑training and evaluation. For small on‑device models, data quality is one of the biggest levers on model quality.

  • Build and scale pipelines for petabyte‑scale text corpora: crawling, extraction, deduplication, model‑based quality filtering and decontamination against our benchmarks.

  • Build synthetic data and rephrasing pipelines together with the research team, and measure whether they actually help.

  • Make data reproducible and compliant: versioning, lineage, dataset cards, licensing and PII handling, so every training run can be traced back to the exact data it saw.

  • Keep the GPUs fed: high‑throughput data loading and streaming for multi‑node training, together with the pre‑training team.

  • Build dataset visualization and QA tooling so researchers can inspect, slice and compare data before they train on it.

  • Work directly with the research team on data mixtures and ablations, and turn data hypotheses into experiments that run within days.

What we're looking for
  • You have several years of experience building large‑scale data systems, in industry or research.

  • You write strong Python, plus e.g. Rust or C++.

  • You have run distributed data processing (Spark, Ray, Dask, Beam or similar) on terabyte to petabyte datasets, with object storage and columnar formats (Parquet, Arrow), and you know how to make it fast and cheap.

  • You have built data pipelines for ML training, ideally for LLM pre‑training, including tokenization and GPU‑based filtering or scoring models.

  • You care about data quality as much as throughput, and you write tests and monitoring for your pipelines.

  • Bonus: experience with multimodal data, synthetic data generation, or data governance under GDPR and the EU AI Act.

How We Work Together

We are a small, focused team of experts. You would join early, work directly with the founders, and help shape how we build. Fast iteration, short lines of communication, and in‑person discussion matter a lot to us. Our culture is built around the office in Freiburg, Germany, with a default of three days a week on site. Alternatively, you can work remotely and join us on a regular cadence. We will discuss what works best for you during the interview process.

We hold ourselves to a high standard: the research must be rigorous, the understanding deep, and the product well crafted. Ideas are judged on their merit, not on who proposed them, credit belongs to the team, and no task is beneath anyone. We make ambitious bets and ship early instead of waiting for perfect conditions. Above all, we care about each other, because initiative only works when it comes with respect for the people around you.

What we offer

Expect a competitive base salary plus equity, and dedicated compute for your research and experiments. We give you the time and support to publish and present at top conferences, and flexibility in how you work, whether on site or remote with regular in‑person visits. With flat hierarchies and short decision paths, good ideas move from discussion to experiment quickly. And yes, the coffee is excellent, and we regularly get together as a team outside of work. We go through compensation and all other details with you early in the process.

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