远程工作雷达

工程经理(机器学习)

Engineering Manager (ML)

AI开发工程未标注地域
公司Tabby
薪资未公开
工作地点Worldwide
地域资格未标注地域
时区要求日间重叠约 9 小时,基本正常作息
用工类型Full Time
发布时间今天
数据来源Himalayas
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Tabby通过重新定义人们与金钱的关系,为人们提供财务自由,让人们在购物、赚钱和储蓄时更加自如。超过2000万用户选择Tabby来掌控自己的消费,并让每一分钱都发挥最大价值。

公司的旗舰产品允许消费者在线上和线下商店进行分期付款,无需利息或费用。超过65000个全球品牌和小型企业,包括Amazon、Noon、IKEA和SHEIN,使用Tabby通过提供便捷灵活的支付方式加速增长并赢得忠实客户。
Tabby为其合作伙伴品牌带来每年超过100亿美元的交易额,是海湾合作委员会(GCC)地区评级最高、评价最多、规模最大且增长最快的金融科技公司。
Tabby于2019年推出,此后从全球和地区投资者那里筹集了超过10亿美元的股权和债务融资,目前估值达45亿美元。关于团队

Tabby Marketplace是我们的用户发现购买商品的地方。内容质量与个性化团队负责使市场运作的数据:来自数千家商家的2500万+产品目录,通过信息流和电商插件(Shopify、Salla、Zid、Amazon等)获取,然后进行分类、丰富、翻译、审核和发布,主要依靠机器学习。

你将领导一个跨职能的团队,包括机器学习工程师、后端和前端工程师、QA和产品分析师。该团队负责基于大语言模型(LLM)的丰富流程(分类、属性提取、翻译)、用于搜索和推荐的物品表示模型和嵌入、由机器学习辅助的审核流程(正在取代人工审核),以及所有这些背后的标注和评估平台。

你将与购物、优惠和变现团队,以及目录运营和合作伙伴支持团队紧密合作。

你将带来的能力:

  • 6年以上工程经验,其中3年以上构建生产级机器学习系统(自然语言处理、大语言模型应用、嵌入或大规模分类)
  • 在快速增长的电商平台、市场或金融科技公司中担任过2年以上工程经理或机器学习团队负责人
  • 具有实际经验交付基于大语言模型的产品:提示和流程设计、微调、评估、成本和延迟控制、自托管和基于API的模型
  • 具有构建和运行大规模数据和机器学习流程(批处理和流处理)的经验,并使其具备可观测性、可重复性和可靠性
  • 扎实的后端基础;你能够审查Go和Python服务
查看英文原文

Tabby creates financial freedom in the way people shop, earn and save by reshaping their relationship with money. Over 20 million users choose Tabby to stay in control of their spending and make the most out of their money.

The company’s flagship offering allows shoppers to split their payments online and in-store with no interest or fees. Over 65,000 global brands and small businesses, including Amazon, Noon, IKEA, and SHEIN use Tabby to accelerate growth and gain loyal customers by offering easy and flexible payments online and in stores.
Tabby generates over $10 billion in annual transaction volume for its partner brands and is the highest-rated, most-reviewed, largest, and fastest-growing FinTech in the GCC region.
Tabby launched in 2019 and has since raised +$1 billion in equity and debt funding from global and regional investors, and is now valued at $4.5 billion.About the team

Tabby Marketplace is where our users discover what to buy. The Content Quality & Personalisation team owns the data that makes the marketplace work: a catalogue of 25M+ products from thousands of merchants, ingested through feeds and e-commerce plugins (Shopify, Salla, Zid, Amazon and more), then categorised, enriched, translated, moderated and published, largely by ML.

You will lead a cross-functional team of ML engineers, backend and frontend engineers, QA and a product analyst. The team runs the LLM-based enrichment pipeline (categorisation, attribute extraction, translation), the item representation model and embeddings that power search and recommendations, ML-assisted moderation that is replacing manual review, and the labeling and evaluation platform behind all of it.

You will work closely with the Shopping, Offers and Monetisation teams, as well as catalogue operations and partner support.

What you’ll bring:

  • 6+ years of engineering experience, including 3+ years building production ML systems (NLP, LLM applications, embeddings, or classification at scale)
  • 2+ years as an Engineering Manager or ML Team Lead at a fast-growing e-commerce, marketplace or fintech company
  • Hands-on experience shipping LLM-based products: prompt and pipeline design, fine-tuning, evaluation, cost and latency control, self-hosted and API-based models
  • Experience building and operating large-scale data and ML pipelines (batch and streaming), and making them observable, reproducible and reliable
  • Solid backend fundamentals; you are comfortable reviewing Go and Python services and reasoning about distributed systems
  • Our stack: Python, Go, PostgreSQL, Pub/Sub, BigQuery, GCS, Kubernetes, Google Cloud Platform, Airflow, and a microservices architecture
  • A strong grasp of ML evaluation: golden datasets, labeling workflows, offline metrics, and A/B testing tied to business outcomes
  • Product sense: you connect catalogue quality to conversion, discovery and merchant growth, and you can prioritise accordingly
  • A proactive mindset and the ability to work independently
  • Strong communication skills in English (B2 level or higher)

Nice to have:

  • Experience with product catalogues, PIM systems, or marketplace content moderation
  • Experience with Arabic-language content
  • Familiarity with data residency and regulated-data requirements

Responsibilities:

  • Own the end-to-end product data pipeline: ingestion from feeds and plugins, ML enrichment, moderation and publication, with clear SLAs for freshness, coverage and quality
  • Lead the ML roadmap for catalogue intelligence: category tree and attribute coverage, translation quality, ML-assisted moderation, item embeddings and recommendations
  • Lead large cross-team projects and drive them to production
  • Contribute to quarterly planning and roadmap definition; define and report OKRs for catalogue quality and personalisation
  • Review feature designs and ensure non-functional requirements are met, including ML evaluation, inference cost, latency and data residency
  • Build and maintain the evaluation and labeling infrastructure that lets the team measure every model change before it reaches production
  • Oversee technical debt management and incident handling across ML and backend services
  • Hire, evaluate, and motivate team members; grow ML engineers into owners of business outcomes
  • Build cross-team and cross-functional collaboration with Shopping, Offers, Monetisation, catalogue operations and partner support to increase efficiency
  • Foster a results- and business-oriented culture
  • Monitor key team performance indicators
  • Ensure process and delivery transparency for stakeholders and partner functions
  • Optimise processes to improve productivity

What we offer:

  • Full-time B2B contract
  • Fully remote setup
  • Up to 20% tax allowance
  • 22 paid leave days annually
  • Stock options (ESOP) in a fast-scaling, pre-IPO company
  • Flexi benefits you can use for wellness, travel, or learning
  • Work alongside a high-performing, international engineering team in a global fintech unicorn

Originally posted on Himalayas

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