Level

GammaPosted 10mo ago

Research Engineer

Research Engineer at Gamma scores 98 out of 100 on AI centrality, which makes it AI Level 4 of 4 (Builds AI) on this board. The level measures how much of the work is AI, not seniority.

San FranciscomidFullTime

AI in this role

fine-tuning
About the role

As a Research Engineer at Gamma, you'll build models for visual communication, a foundational bet for the company. You'll teach models to reason about spatial composition, hierarchy, and visual language the way a skilled communicator or designer does.

This work sits at the intersection of research rigor and product impact. You’ll have the opportunity to build evals and training data for a field where there isn’t much of either. You’ll fine-tune vision-language models so that Gamma's 100M+ users get exceptional design every time they generate.

You'll succeed here if you combine deep expertise in VLMs and multimodal modeling with a research mindset, comfort working in ambiguity, and a rigorous eye for visual and design quality.

Our team has a strong in-office culture and works in person 4 to 5 days per week in San Francisco. We love working together to stay creative and connected, with flexibility to work from home when focus matters most.

What you'll do

  • Fine-tune vision-language models to generate and critique layouts, reason about design intent, and translate content into coherent visual form

  • Design evaluation frameworks and benchmarks for visual communication quality, covering layout, typographic structure, color, and information density, the dimensions generic text evals miss

  • Lead proprietary data collection for visual design tasks, building the datasets needed to teach models design principles that aren't available off the shelf

  • Run rigorous experiments to understand model behavior, then turn the results into targeted improvements: a new training objective, a fine-tuned model, or a sharper benchmark

  • Diagnose systematic failure modes in production output and fix them at the root rather than patching symptoms

  • Build the tools and workflows that let the team iterate and validate fast

  • Partner with product and engineering to ship quality improvements that hold up at scale

What you'll bring

  • Hands-on experience with vision-language models or multimodal modeling: training, fine-tuning, or systematically evaluating them

  • Experience with post-training techniques including supervised fine-tuning and reinforcement learning

  • Track record of building evaluations for subjective or hard-to-measure qualities, not just accuracy on labeled benchmarks

  • 2+ years building AI systems, with production experience shipping models that real users depend on

  • Master’s or PhD in Computer Science, Machine Learning, or a related field, or equivalent hands-on research experience. A strong publication record at top-tier conferences such as NeurIPS, CVPR, ACL, or comparable venues.

Compensation range:

The base salary for this full-time position, which spans multiple internal levels depending on qualifications, ranges between $180K - $340K plus benefits & equity.

Final offer amounts are determined by multiple factors, including but not limited to experience and expertise in the requirements listed above.

If you're interested in this role but you don't meet every requirement, we encourage you to apply anyway! We're always excited about meeting great people.

Prepare for this job

A free preview built only from this posting: what it asks for, what you could be asked in an interview, and how to adjust your resume.

Skills and AI tools this role asks for

Fine Tuning

Questions you could be asked

  1. Walk me through fine-tuning a model: what data did you use, and how did you check the result?
  2. How would you decide a model or AI system is ready to ship?
  3. Tell me about a time a model underperformed in production. How did you find out, and what did you change?

Adapt your resume

  • List these exact terms on your resume: Fine Tuning. An applicant tracking system matches the wording, not the idea.
  • Attach one line of real, concrete experience to at least one of them — a tool named with nothing behind it rarely survives a human read.
  • Lead with what you built, trained or shipped — this role is judged on the AI system itself, not the tools around it.

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