# Applied AI/ML Scientist, Intern at Faire

Faire is hiring an Applied AI/ML Scientist, Intern in San Francisco, United States. Level rates it Builds AI ●●●●; you can [apply on Level](https://jobsbylevel.com/go/b18f534c-5927-4ff2-8ec8-0422feead452).

AI Level 4, AI centrality 90 out of 100. San Francisco, CA.

## Details

- Company: [Faire](https://jobsbylevel.com/companies/faire)
- AI level: AI Level 4 (score 90 out of 100)
- Location: San Francisco, CA
- Posted: October 6, 2026
- Apply: https://jobsbylevel.com/go/b18f534c-5927-4ff2-8ec8-0422feead452

## Description

About Faire Faire is a technology wholesale platform built on the belief that the future is local. Independent retailers around the globe collectively represent a multi-hundred-billion-dollar wholesale market that has historically been fragmented and offline. At Faire, we're using the power of tech, data, and machine learning to connect this thriving community of entrepreneurs across the globe. Picture your favorite boutique in town — we help them discover the best products from around the world to sell in their stores. With the right tools and insights, we believe that we can level the playing field so businesses can grow and local communities can thrive. We’re looking for smart, resourceful and passionate people to join us as we power the shop local movement. If you believe in community, come join ours. About this role Our Applied AI/ML Science team builds and maintains the models that power the marketplace. That work includes the shipping and delivery estimates retailers rely on as they shop and check out: what it will cost to ship and when it will arrive, before the order has been packed. Within Applied Science, our Shipping and Fulfillment team builds the models behind those estimates, including models that learn to understand products from images and text. Better predictions give retailers confidence in what they're buying and, in turn, help brands sell more on Faire. What you will be doing You'll own a focused project in one of these areas: Predicting how an order will be packed : Before an order ships, we have to anticipate how it will be packed. You'll build models that learn from what each item is and how items combine in a cart. Recommending better ways to pack: How an order is packed shapes what it costs to ship. You'll develop models that understand items from images and text and learn from historical packing outcomes to recommend packing that reduces shipping cost and improves efficiency. Understanding products from a catalog: Listings often lack reliable weight, size and shape. You'll train multimodal deep learning models that infer these physical characteristics from images, text and other catalog signals. Whichever project you take on, you will : Survey the literature and existing approaches to identify promising ideas Prototype and train models offline, benchmarking against our current methods Build out the strongest approach into a working implementation Work with Applied Scientists and ML Engineers to test it against live traffic Present findings and recommendations to the team What it takes Currently enrolled in or recently graduated from a Master's or PhD program in Computer Science, Machine Learning, Statistics, Electrical Engineering, or a related technical field Hands-on experience building deep learning models (e.g., PyTorch), ideally with images, text, or both, including fine-tuning pre-trained models or working with embeddings Familiarity with gradient-boosted trees and other tabular ML methods Strong Python and SQL Ability to read research papers and turn promising ideas into working code Solid grounding in statistics and model evaluation, including benchmarking against strong baselines and estimating uncertainty Comfort working with noisy or incomplete real-world data A genuine enthusiasm for tackling ambiguous problems and learning new tools and techniques Internship Details This paid Winter 2027 internship runs for 12 to 14 weeks, beginning in January 2027, with flexible start dates available for qualified candidates. Extensions may be offered based on project needs and mutual agreement. Pay rate San Francisco: the pay rate for this role is $75 USD per hour. Actual hourly pay will be determined based on permissible factors such as transferable skills, work experience, market demands, and primary work location. The pay range provided is subject to change and may be modified in the future. Faire uses Artificial Intelligence (AI) to screen and select applicants for this position. This job posting

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Source: https://jobsbylevel.com/jobs/applied-ai-ml-scientist-intern-at-faire-a2923a

## Cite this page

Level. https://jobsbylevel.com/jobs/applied-ai-ml-scientist-intern-at-faire-a2923a.

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