Machine Learning Engineer (Singapore)

Reposted 8 Days Ago
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Singapore, SGP
In-Office
Mid level
Artificial Intelligence • Software
The Role
The ML Engineer will build and scale large-scale data systems and pipelines, focusing on workload orchestration, dataset curation, and quality improvement techniques for machine learning models.
Summary Generated by Built In

About Cantina:

Cantina Labs is a social AI company, developing a suite of advanced real-time models that push the boundaries of expression, personality, and realism. We bring characters to life, transforming how people tell stories, connect, and create. We build and power ecosystems. Cantina, our flagship social AI platform, is just the beginning.

About the Role:

Cantina is expanding, and we're looking for an ML Engineer to join our growing Singapore team! In this role, you will build and scale systems for ingesting, processing, and delivering large-scale video and multimodal data for model training. You'll own the full pipeline — from raw content to curated, filtered, and training-ready datasets — with a focus on speed, reliability, reproducibility, and cost-efficiency. You'll partner closely with curation and modeling teams to operationalize evolving dataset recipes and iterate on approaches that improve model outcomes.

What You’ll Do:

  • Design and scale distributed data pipelines for preprocessing, dataset generation, and repeated dataset refreshes

  • Own workflow orchestration, job scheduling, monitoring, and failure recovery for large-scale data processing jobs

  • Implement and maintain containerized pipeline infrastructure using Kubernetes or equivalent orchestration systems

  • Optimize cloud-based data storage and movement across providers (AWS, GCS, or Azure) for cost, throughput, and operational efficiency

  • Define and implement best practices for dataset storage layout, versioning, caching, retention, and access patterns

  • Design and implement curation pipelines that determine which video and image content is selected, filtered, and retained for model training, including image-text pair datasets used in joint training regimes

  • Build and improve VLM-based captioning and metadata generation workflows at scale across both video and image data

  • Develop and apply quality and aesthetic scoring models, CLIP-based semantic filtering, and other signal-extraction approaches for data selection

  • Build tooling to support deduplication workflows at scale, including near-dedup and exact deduplication pipelines over large video corpora

  • Analyze dataset composition, identify quality issues, and iterate on curation logic to improve training outcomes

  • Define and evolve standards for what constitutes high-quality, training-ready video data across different training regimes

What You’ll Bring:

  • Strong hands-on experience building or scaling large-scale data systems and pipelines for machine learning, including dataset curation, filtering, and quality improvement

  • Experience with distributed data processing frameworks such as PySpark or Ray, and orchestration tools such as Airflow or equivalent

  • Familiarity with containerization and container orchestration, including Docker and Kubernetes

  • Experience working with cloud-based data storage and compute (AWS, GCS, and/or Azure), including tradeoffs around cost, throughput, storage layout, and access patterns

  • Experience with VLM-based captioning pipelines or quality/aesthetic scoring models for video or image data, including curation of image-text pair datasets for joint image-video training

  • Familiarity with CLIP-based or embedding-based filtering and semantic data selection techniques

  • Familiarity with video and media processing tools such as FFmpeg, PyAV, DALI, or OpenCV, and relevant libraries such as Decord, torchvision, PyTorchVideo, or torchaudio

  • Proficiency in Python

  • Strong problem-solving, communication, and documentation skills

Benefits We Offer:

  • Competitive salary and generous company equity

  • Personal time off and paid holidays

  • Health insurance

  • Global travel insurance: Covers you when traveling internationally

  • Monthly spending stipend: $500 (~S$635)

  • Equipment: All equipment needed for your home office

Skills Required

  • Experience in building large-scale data systems and pipelines for machine learning
  • Experience with distributed data processing frameworks such as PySpark or Ray
  • Familiarity with containerization and orchestration using Docker and Kubernetes
  • Experience with cloud-based storage and computations in AWS, GCS, or Azure
  • Experience with VLM-based captioning pipelines
  • Familiarity with video and media processing tools such as FFmpeg, PyAV, DALI, or OpenCV
  • Proficiency in Python
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The Company
HQ: San Francisco, California
364 Employees
Year Founded: 2023

What We Do

Cantina Labs, founded by Sean Parker, is a new social platform with the most advanced AI character creator. Build, share, and interact with AI bots and your friends directly in the Cantina or across the internet. Cantina bots are lifelike, social creatures, capable of interacting wherever humans go on the internet. Recreate yourself using powerful AI, imagine someone new, or choose from thousands of existing characters. Bots are a new media type that offer a way for creators to share infinitely scalable and personalized content experiences combined with seamless group chat across voice, video, and text.

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