Research Engineer Intern

Posted 16 Days Ago
Be an Early Applicant
Hiring Remotely in Australia
Remote
Internship
Artificial Intelligence • Information Technology • Software
The Role
Build and ship a production project for Agora, a decentralized distributed training system. Develop multiprocessing, asynchronous I/O, and threading components; work with large-scale training infrastructure across AWS and GCP; contribute daily to production code through reviews and mentorship; and present final project results to engineering and research teams.
Summary Generated by Built In

Pluralis Research works on Protocol Learning: training and serving large models in a fully decentralized way on small consumer-grade devices connected via the internet. Despite being dismissed as infeasible, we have made significant advances on this problem, most recently Agora, a permissionless run that pretrained an 8B model from scratch on consumer GPUs spread over the internet, with no single participant ever holding the full weights (tech report). While many of the core research problems have been solved, Protocol Learning unlocks a series of new challenges. For the mission in full, read A Third Path: Protocol Learning.

As a Research Engineer Intern you'll work on Agora, our production decentralized training system, alongside the engineers running real multi-node training at scale. Intern projects are well-scoped pieces of our live roadmap, not side experiments: you'll ship real work in week one and own a genuine open problem by the end of your internship.

Key Responsibilities
  • Ship a roadmap project: Design, build, and ship a well-scoped project on the Agora roadmap, with a final presentation to the engineering and research teams.

  • Concurrent and parallel systems: Build and improve multiprocessing, async I/O, and threading components inside a production distributed training stack.

  • Training infrastructure: Work hands-on with large-scale training infrastructure across cloud providers (AWS/GCP).

  • Daily production work: Contribute to the production codebase every day, with code review and mentorship from a buddy on the Agora team.

What We're Looking For
  • ML background (required): Current enrollment in, or recent completion of, a Masters or PhD in machine learning, computer science, or a related field. You can keep pace with a research-driven team, not just a strong generalist engineering profile.

  • Strong engineering: Strong Python and PyTorch, and experience building concurrent or parallel systems: multiprocessing, async I/O, threading.

  • Distributed ML exposure: Hands-on exposure to distributed machine learning via internship, coursework, or serious projects, and experience with AWS, GCP, or other hyperscalers.

  • Mission alignment: You believe Protocol Learning is the viable third path for collective, trustless, and sovereign AI.

Nice to Have
  • Top-tier ML publications (welcome, but not required for systems-focused candidates).

  • Open-source contributions to ML frameworks, distributed systems, or networking libraries.

FYI's
  • This is a full-time, fixed-term internship: 3 months, with the option to extend. Australia-based candidates only.

  • We work remotely across the world, with the main teams in Australia and North America. You'll need to be comfortable working across timezones.

  • Applicants must have professional-level English proficiency (written and spoken).

  • Recruiters: we aren't looking for agency support at this time. We'll reach out if we need help.

We are backed by Union Square Ventures and other tier-1 investors, and we are a world-class, deeply technical team of ML researchers. Pluralis is unapologetically ideological. We believe AI, and the world, end up on a better path if we succeed in implementing the protocol for intelligence. If this resonates, please apply.

Skills Required

  • Current enrollment in or recent completion of a Master's or PhD in machine learning, computer science, or a related field
  • Strong Python experience
  • Strong PyTorch experience
  • Experience building concurrent or parallel systems using multiprocessing, async I/O, or threading
  • Hands-on exposure to distributed machine learning through an internship, coursework, or serious projects
  • Experience with AWS, GCP, or another hyperscaler
  • Professional-level written and spoken English proficiency
  • Top-tier machine learning publications
  • Open-source contributions to machine learning frameworks, distributed systems, or networking libraries
Am I A Good Fit?
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The Company
15 Employees

What We Do

Pluralis is developing a protocol that facilitates collaborative training and ownership of foundation models.

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