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Machine Learning Engineer, Content Quality Signals

Job in San Francisco, San Francisco County, California, 94199, USA
Listing for: Pinterest
Full Time position
Listed on 2026-02-16
Job specializations:
  • IT/Tech
    Machine Learning/ ML Engineer, AI Engineer, Data Scientist
Salary/Wage Range or Industry Benchmark: 125000 - 150000 USD Yearly USD 125000.00 150000.00 YEAR
Job Description & How to Apply Below
Position: Staff Machine Learning Engineer, Content Quality Signals

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.

Overview

The Content Understanding team builds machine learning models that "read" Pinterest content—images, text, and video—to produce high-quality semantic signals (e.g., embeddings, localization, quality/safety labels). These signals power relevance and retrieval for Homefeed, Search, Related Pins, and Ads, and also support integrity use cases like spam and low-quality detection. We work end-to-end: from data and labeling strategy, to model training and evaluation, to low-latency serving and monitoring at Pinterest scale.

The role is ideal for a senior modeler who also enjoys developing, product ionizing models and leading technical direction across teams.

What you’ll do
  • Lead modeling strategy for content understanding (vision, NLP, multimodal), including architecture selection, training approach, and evaluation methodology.
  • Design and ship production models that generate content signals such as embeddings and classifications used across multiple product surfaces.
  • Own the full ML lifecycle: data/labeling strategy (human labels + weak supervision), training pipelines, offline evaluation, online experimentation, deployment, and monitoring/retraining.
  • Partner with infra/platform teams to ensure scalable, reliable training/serving (latency, cost, observability, rollout safety).
  • Collaborate with signal-consuming teams (ranking, retrieval, integrity, ads) to define signal contracts, adoption patterns, and success metrics.
  • Provide technical leadership through design reviews, mentoring, and raising the quality bar for modeling and ML engineering practices.
What we’re looking for
  • M.S/ PhD degree in Computer Science, Statistics or related field.
  • Significant industry experience building software and ML pipelines/systems, including technical leadership (project/tech lead or equivalent).
  • Strong proficiency in Python and at least one ML stack such as PyTorch / Tensor Flow, plus solid software engineering fundamentals.
  • Proven experience training and deploying ML models to production, including model versioning, rollouts, monitoring, and retraining strategies.
  • Deep hands-on experience in content understanding domains, such as:
    • computer vision (classification, detection, representation learning)
    • NLP (text classification, entity/topic modeling)
    • multimodal / embedding models (e.g., transformer-based representations)
  • Experience working with large-scale datasets and distributed compute (e.g., Spark-like ecosystems, distributed training, GPU environments).
  • Strong applied skills in evaluation and experimentation: defining metrics, offline/online alignment, A/B testing, debugging regressions, and model quality analysis.
  • Demonstrated ability to influence across teams and drive ambiguous problem areas to measurable outcomes.
Relocation Statement
  • This position is not eligible for relocation assistance. Visit our Pin Flex page to learn more about our working model.
In-Office Requirement Statement
  • We let the type of work you do guide the collaboration style. That means we're not always working in an office, but we continue to gather for key moments of collaboration and connection.
  • This role will need to be in the office for in-person collaboration 1-2 times/quarter and therefore can be situated anywhere in the country.

#LI-REMOTE

#LI-SM4

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…

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