Director, Machine Learning Engineering, Ads Quality
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Counted across 14 company job boards, updated as roles open and close.
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- Why do you want to join Pinterest?
- What is your experience with Machine learning? Tell me one thing you learned the hard way.
- When would you not use machine learning for a problem?
- Walk me through a model you built, from the data to how it was used.
- How did you know your model was actually good, and not just good on your test set?
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Practise the Director, Machine Learning Engineering, Ads Quality at Pinterest interview free →About Pinterest:
Millions of people around the world come to our platform to find creative ideas, dream about new possibilities and plan for memories that will last a lifetime. At Pinterest, we’re on a mission to bring everyone the inspiration to create a life they love, and that starts with the people behind the product.
Discover a career where you ignite innovation for millions, transform passion into growth opportunities, celebrate each other’s unique experiences and embrace the flexibility to do your best work. Creating a career you love? It’s Possible.
At Pinterest, AI isn't just a feature, it's a powerful partner that augments our creativity and amplifies our impact, and we’re looking for candidates who are excited to be a part of that. To get a complete picture of your experience and abilities, we’ll explore your foundational skills and how you collaborate with AI.
Through our interview process, what matters most is that you can always explain your approach, showing us not just what you know, but how you think. You can read more about our AI interview philosophy and how we use AI in our recruiting process here.
Pinterest is a visual discovery platform where hundreds of millions of people come to find inspiration and decide what to try, buy, or do next. Our Ads Quality organization builds the machine-learning systems that make ads relevant and valuable to Pinners while delivering meaningful outcomes for advertisers.
We are seeking a Director of Machine Learning Engineering to lead a broad portfolio of Ads Quality modeling teams focused on engagement, conversion, ROAS optimization, ranking, representation learning, and ML-powered experimentation.
In this role, you will shape and drive a unified technical strategy across Ads Quality, leading teams responsible for engagement ranking, oCPM and conversion modeling, ROAS optimization, lightweight ranking and retrieval models, foundation model adoption, sequence and multimodal modeling, and the quality and efficiency of production machine learning systems.
What you’ll do:
- Set the technical vision and multi-year strategy for Ads Quality machine learning, connecting model innovation to Pinner value, advertiser performance, revenue, and marketplace health.
- Lead and develop a group of engineering managers, senior technical leaders, and machine-learning engineers across multiple modeling domains.
- Establish a coherent modeling roadmap across engagement, conversion, ROAS, relevance, ranking, and foundation-model initiatives.
- Drive improvements in model quality, calibration, generalization, cold-start performance, attribution, and robustness across Pinterest surfaces.
- Guide the evolution of Ads models toward larger, more generalizable architectures, including foundation models, distillation, long-context sequence modeling, multimodal representations, and cross-domain learning.
- Ensure that modeling investments translate into reliable production outcomes through strong offline evaluation, online experimentation, launch discipline, and post-launch monitoring.
- Partner closely with Ads Product, Ads Data Science, Ads Signals, Ads Retrieval, Ads Delivery, Measurement, Core, ATG, and ML Infrastructure.
- Set expectations for training-serving parity, data quality, privacy, reliability, latency, capacity, and cost efficiency.
- Improve engineering velocity through better experimentation workflows, reusable modeling infrastructure, automation, and agentic development tools.
- Build a culture of technical excellence, candid collaboration, inclusion, ownership, and continuous learning.
- Represent Ads Quality ML in senior leadership forums and communicate strategy, tradeoffs, risks, and results clearly to technical and non-technical audiences.
What we’re looking for:
- Minimum 12 years of experience building and deploying machine-learning systems, including significant experience leading managers and multi-team organizations.
- Demonstrated success leading large-scale recommendation, ranking, advertising, search, marketplace, or personalization ML teams.
- Strong understanding of modern deep-learning and recommender-system techniques, including sequence models, embeddings, multimodal models, multi-task learning, foundation models, distillation, and reinforcement learning.
- Experience with conversion, value, ROAS, bidding, or other lower-funnel optimization problems is strongly preferred.
- Proven ability to connect modeling objectives and offline metrics to online experiments and business outcomes.
- Experience operating production ML systems with demanding requirements for latency, availability, calibration, privacy, reliability, and cost.
- Strong judgment in balancing near-term product delivery with foundational technical investments.
- Track record of building high-performing organizations, developing senior leaders, and creating effective operating mechanisms.
- Excellent communication and collaboration skills, with the ability to influence across organizational boundaries.
- Bachelor’s degree in Computer Science, Engineering, a related field, or equivalent experience; advanced degree preferred.
Relocation Statement: This position is not eligible for relocation assistance. Visit our PinFlex page to learn more about our working model.
In-Office Requirement Statement:
- We recognize that the ideal environment for work is situational and may differ across departments. What this looks like day-to-day can vary based on the needs of each organization or role.
- This role will need to be in the office for in-person collaboration 1-2x per week and therefore needs to be in a commutable distance from one of the following offices: Palo Alto, San Francisco.
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At Pinterest we believe the workplace should be equitable, inclusive, and inspiring for every employee. In an effort to provide greater transparency, we are sharing the base salary range for this position. The position is also eligible for equity. Final salary is based on a number of factors including location, travel, relevant prior experience, or particular skills and expertise.
Information regarding the culture at Pinterest and benefits available for this position can be found here.
Our Commitment to Inclusion:
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Listed on greenhouse · posted 2026-10-06. ApplySarthi collects openings and links to application pages; the role is advertised by Pinterest, not by us.