Member of Technical Staff, Machine Learning

Sieve, Inc

$130K — $180K *
Consumer Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Strong experience in Python for production ML systems
  • Proficiency in training, fine-tuning, or deploying deep learning models
  • Familiarity with PyTorch and modern foundation models
  • Intuitive understanding of evaluation metrics and dataset quality
  • Ability to rapidly prototype using new AI models and APIs
  • Strong ownership of projects from problem identification to deployment
  • Excellent communication skills for cross-functional collaboration
  • Passion for video and multimodal AI technologies

Responsibilities

  • Own model quality for customer-facing video understanding tasks
  • Fine-tune vision-language and multimodal foundation models
  • Build automated evaluation and QA pipelines with advanced models
  • Design filtering, ranking, and labeling systems for large video datasets
  • Create datasets and evaluation frameworks to enhance model performance
  • Develop end-to-end production ML pipelines, including quality validation
  • Translate ambiguous customer requirements into scalable ML solutions

Benefits

  • Collaborative work environment in a cutting-edge AI space
  • Opportunity to work directly with industry-leading AI labs
  • Hands-on involvement in shaping end-to-end ML systems
  • Dynamic role with scope for rapid prototyping and iteration
  • Focus on impactful outcomes that improve dataset quality
Full Job Description
About the Role

As a Machine Learning Engineer at Sieve, you'll own the entire ML lifecycle - from understanding customer problems, to designing datasets, improving models, building evaluation systems, and shipping production pipelines that deliver measurable improvements in dataset quality.

You'll work directly with frontier AI labs to understand difficult data problems, then build end-to-end systems that solve them. One week you might fine-tune a multimodal model to improve recall on a difficult edge case. The next you might engineer a VLM-based QA pipeline, design a new evaluation framework, or run a large-scale filtering pipeline on millions of hours of multimodal data.

We're looking for engineers who enjoy owning problems end-to-end, from understanding customer requirements through shipping production ML systems that measurably improve dataset quality.

What You'll Do
  • Own model quality for customer-facing video understanding problems
  • Fine-tune vision-language and multimodal foundation models for specialized tasks
  • Build automated evaluation and QA pipelines using frontier models like Gemini, GPT, Claude, and open-source VLMs
  • Design high-precision filtering, ranking, retrieval, and labeling systems over internet-scale video datasets
  • Create datasets, benchmarks, and evaluation frameworks that continuously improve model quality
  • Develop production ML pipelines spanning preprocessing, inference, post-processing, and quality validation
  • Work directly with frontier AI labs to translate ambiguous requirements into scalable ML systems
  • Ship improvements quickly, measure results, and iterate based on real-world performance
Requirements
  • Strong Python engineer with experience building production ML systems
  • Experience training, fine-tuning, or deploying modern deep learning models
  • Comfortable working with PyTorch and modern foundation models
  • Excellent intuition for evaluation, dataset quality, precision/recall tradeoffs, and edge cases
  • Enjoys rapidly prototyping with new AI models and APIs
  • Comfortable owning projects from customer problem to internal pipelines to deployed solution
  • Strong communicator who enjoys working directly with customers and cross-functional teams
  • Excited by video, multimodal AI, and frontier foundation models
  • In-person at our SF HQ


*all roles at Sieve require you to be onsite in San Francisco 5 days per week

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