AI Engineering Lead

Posted 4 Days Ago
Hiring Remotely in United States
Remote
Senior level
Artificial Intelligence • Software • Analytics
The Role
Lead the development of generative AI tools for fashion, guiding ML engineers, and implementing innovative AI systems and workflows.
Summary Generated by Built In
AI Engineering Lead

Raspberry AI

Raspberry AI is a leading provider of industry-defining AI design software for fashion brands and retailers. Our platform empowers global brands to understand consumer demand, generate unique designs within minutes, and revolutionize how products are conceived and brought to market.

Backed by Andreessen Horowitz, Khosla Ventures, MVP, and Greycroft, Raspberry AI is transforming a $2.5T industry through cutting-edge generative and multimodal AI.

About the Role

We are seeking an experienced AI Engineering Lead to drive the next generation of generative AI capabilities powering Raspberry’s creative intelligence platform. This person will own development of Raspberry's suite of creative AI tools, spanning image generation, editing and end-to-end design workflows. They will define how models, orchestration and evaluation come together to deliver reliable and powerful design experiences for our customers, and will own the technical direction and quality of the AI systems that power the product.

You’ll operate at the intersection of research, engineering, and product, shaping how AI drives creativity, collaboration, and impact across the fashion ecosystem.

Key Responsibilities
  • Develop and own the technical roadmap for Raspberry’s creative AI tools, spanning image generation, editing, and end-to-end design workflows.

  • Mentor and guide a small team of ML engineers and researchers, raising the bar on experimentation, code quality, system design, and impact.

  • Design and evolve the systems and model orchestration in order to improve quality, controllability, and realism in generated designs.

  • Conduct applied research and rapid experimentation on diffusion and other generative models, adaptation techniques, and routing strategies, and bring the most effective approaches into production.

  • Prototype and refine end‑to‑end design workflows for designers inside Raspberry and translate them into robust, production features.

  • Collaborate closely with product, design, and product engineering to shape creative workflows, quality standards, and the roadmap for AI-powered features.

  • Evaluate and integrate new techniques, frameworks, and open-source contributions to stay on the frontier of generative AI research.

  • Design and maintain pragmatic evaluation loops that combine automated metrics, LLM-assisted review, human feedback, and high-quality golden datasets.

  • Serve as a thought leader on AI innovation within Raspberry and across the broader industry.

Qualifications
  • Master’s or Ph.D. in Computer Science, Machine Learning, or a related field, or equivalent industry experience in applied ML roles.

  • 7+ years of experience in applied machine learning or adjacent research‑to‑product roles with tangible shipped impact, including 3+ years leading significant technical projects and/or acting as a tech lead for other engineers.

  • Applied technical depth in several of the following areas: computer vision for generation/editing, diffusion or other generative model adaptation, model routing/orchestration, multimodal prompting, and tool use.

  • Strong practical experience with generative image and/or video models, including using and adapting modern diffusion or multimodal models in production systems.

  • Experience training and evaluating models on cloud GPU platforms (AWS, GCP, or Azure) and integrating external model APIs alongside open‑source stacks.

  • Proven ability to take AI research to production, with experience building systems that balance innovation, performance, and maintainability.

  • Proficiency using and tuning multimodal LLMs to support prompting, routing, and evaluation workflows.

  • Familiarity with LLMs, CLIP-like architectures, and multimodal embeddings. Familiarity with CLIP-like architectures and multimodal embeddings, and how they integrate into generative and evaluation pipelines.

  • Excellent communication and collaboration skills — able to work fluidly with designers, engineers, and business leaders alike.

  • Passion for creative AI and its ability to transform human expression and design workflows.

Nice to Have
  • Experience in computer vision for design, visual creativity or 3d/garment workflows.

  • Experience building tools or workflows for professional creatives (designers, artists, or adjacent domains).

  • Contributions to open-source AI projects, published research in top-tier venues (NeurIPS, CVPR, ICML, etc.), or sharing work publicly (talks, blog posts, tutorials, or research).

  • Comfort operating in an early-stage startup environment with fast iteration cycles.

Why Raspberry AI
  • Opportunity to own the technical direction of Raspberry’s creative AI systems and shape the AI vision of one of the most exciting generative companies in fashion tech.

  • Collaborate with a world-class, multidisciplinary team pushing the boundaries of AI-driven creativity.

  • Competitive compensation, equity, and benefits in a remote-first environment.

Top Skills

AWS
Azure
Clip-Like Architectures
Cloud Gpu Platforms
Computer Vision
Diffusion Models
GCP
Generative Ai
Llms
Machine Learning
Multimodal Ai
Multimodal Embeddings
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The Company
New York, , New York
22 Employees

What We Do

Increase revenue and speed-to-market with our industry-defining AI design software. Our software enables fashion brands and retailers to understand consumer demand and create unique designs that are in high demand with high purchase likelihood, in minutes, not months.

We bring the best industry-leading AI analytics and generative AI capabilities to fashion product development. Join some of the top 10 global fashion brands using our software to turbocharge the design and merchandising processes. Reach out to us at useraspberry.com for more information

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