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Member of Technical Staff - Post Training

blackforestlabssenior

In short

  • ▸Desarrollas y gestionas la pipeline de post-entrenamiento de modelos generativos avanzados.
  • ▸Trabajas con múltiples modos: imágenes, edición y video, optimizando calidad y alineación con el usuario.
  • ▸Destaca por liderar el paso de modelos base a productos reales con impacto medible.

Comfortable working in English, written and spoken.

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What they ask for

  • ✓Experiencia comprobada en post-entrenamiento de modelos generativos de vanguardia.
  • ✓Dominio del stack completo: SFT, DPO, RLHF, RLAIF, modelado de recompensas, personalización.
  • ✓Capacidad para trabajar con múltiples modos: texto a imagen, edición, referencias múltiples y video.
  • ✓Experto en PyTorch con habilidades para escribir código de investigación reutilizable.
  • ✓Enfoque en entregar mejoras medibles de calidad de modelo al usuario, no solo publicaciones.
  • ✓Experiencia en distilación o pipelines de evaluación de alto rendimiento (deseable).

Don't tick every box? That's normal — your free dossier shows your gaps and how to cover them in the interview.

PyTorchSFTRLHFRLAIFDPOpreference learningreward modelingdistillationLADDDMD

Who should you write to at blackforestlabs?

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About Black Forest Labs We're the team behind Latent Diffusion, Stable Diffusion, and FLUX — foundational technologies that changed how the world creates images and video. Our models power the tools used by millions of creators, developers, and businesses worldwide, and FLUX is among the most advanced generative systems in the world. Headquartered in Freiburg, Germany with a growing presence in San Francisco, we're scaling fast while staying true to what makes us different: research excellence, open science, and building technology that expands human creativity. Why This Role Post-training is where a foundation model becomes a product. In this role, you'll own the post-training pipeline for our multimodal models end to end — from data strategy and reward modeling to preference optimization, distillation, and safety tuning — across image, editing, and video. You'll drive measurable gains in model quality, build the infrastructure that lets the whole research team iterate fast, and push the state of the art in what it means to align a generative model to human intent. This is a Staff / Senior IC role. We're looking for someone who has shipped post-training for a frontier model before and wants to do it again. What You'll Work On • Own the full post-training pipeline end to end — from data curation and reward modeling through fine-tuning, preference optimization, distillation, safety tuning, evaluation, and deployment • Advance techniques across the post-training stack: SFT, RLHF, RLAIF, DPO, preference learning, and reward modeling to align models with human intent and aesthetic judgment • Work across modalities: text-to-image, image editing, multi-reference, and video post-training • Build personalization and customization capabilities that let users adapt our models to their own creative style • Design and maintain high-throughput fine-tuning and evaluation infrastructure to support rapid iteration across the research team • Identify quality and alignment gaps through rigorous evaluation, then close them through targeted research and engineering What We're Looking For • You've owned post-training for a frontier generative model through release (SFT, preference optimization (DPO or RLHF), distillation, safety tuning) with measurable quality wins on human prefs or standard benchmarks • Deep experience across the post-training stack, not just one slice: reward modeling, preference learning, RLHF/RLAIF, and personalization • Comfortable working across modalities: text-to-image, image editing, multi-reference, and ideally video • Strong PyTorch fluency; you write research code that others can build on • Experience with distillation (LADD, DMD, consistency models, or similar) or with building high-throughput eval pipelines is a strong plus • Bias toward shipping: measurable model-quality improvements that reach users, not just papers How We Work Together We’re a distributed team with real offices that people actually use. Depending on your role, you’ll either join us in Freiburg or SF at least 2 days a week (or one full week every other week), or work remotely with a monthly in-person week to stay connected. We’ll cover reasonable travel costs to make this possible. We think in-person time matters, and we’ve structured things to make it accessible to all. We’ll discuss what this will look like for the role during our interview process. Everything we do is grounded in four values: • Obsessed. We are a frontier research lab. The science has to be right, the understanding deep, the product beautiful. • Low Ego. The work speaks. The best idea wins, no matter who said it. C

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