Machine Learning Engineer - ML Training Platform
Why This Role Stands Out
This remote Machine Learning Engineer role offers a unique opportunity to shape the future of foundational AI research by building innovative distributed training platforms for community-owned models. You'll thrive here if you're a seasoned engineer passionate about tackling complex challenges in distributed systems and large-scale ML training, eager to contribute to groundbreaking work in a collaborative and forward-thinking environment. Apply today to be at the forefront of decentralized AI development!
Quick Overview
Job Description
Pluralis Research carries out foundational research on Protocol Learning: multi-participant training of foundation models where no single participant has, or can ever obtain, a full copy of the model. The purpose of Protocol Learning is to facilitate the creation of community-trained and community-owned frontier models with self-sustaining economics.
We're looking for Senior/Staff engineers with 5+ years of experience in distributed systems and ML large-scale training. You'll be implementing a novel substrate for training distributed ML models that work under consumer grade internet connection.
Responsibilities Distributed Training Architecture & OptimizationDesign and implement large-scale distributed training systems optimized for heterogeneous hardware operating under low-bandwidth, high-latency conditions.
Develop and optimize model-parallel training strategies (data, tensor, pipeline parallelism) with custom sharding techniques that minimize communication overhead.
Optimize GPU utilization, memory efficiency, and compute performance across distributed nodes.
Implement robust checkpointing, state synchronization, and recovery mechanisms for long-running, fault-prone training jobs.
Build monitoring and metrics systems to track training progress, model quality, and system bottlenecks.
Architect resilient training systems where nodes can fail, networks can partition, and participants can dynamically join or leave.
Design and optimize peer-to-peer topologies for decentralized coordination across non-co-located nodes.
Implement NAT traversal, peer discovery, dynamic routing, and connection lifecycle management.
Profile and optimize communication patterns to reduce latency and bandwidth overhead in multi-participant environments.
Strong experience building and operating distributed systems in production.
Hands on expertise with distributed training frameworks (FSDP, DeepSpeed, Megatron, or similar).
Deep understanding of model parallelism (data, tensor, pipeline parallelism).
Expert level Python with production experience (concurrency, error handling, retry logic, clean architecture).
Strong networking fundamentals: P2P systems, gRPC, routing, NAT traversal, distributed coordination.
Experience optimizing GPU workloads, memory management, and large scale compute efficiency.
Equity heavy compensation with meaningful ownership in a mission driven company
Competitive base salary for senior engineering roles in Australia
Visa sponsorship available for exceptional candidates
Remote first with optional access to our Melbourne hub
World class team - teammates were previously at Google, Amazon, Microsoft, and leading startups
Backed by Union Square Ventures and other tier 1 investors, we're a world class, deeply technical team of ML researchers and engineers. Pluralis is unapologetically ideological. We view the world as a better place if we are able to implement what we are attempting, and Protocol Learning as the only plausible approach to preventing a handful of massive corporations monopolising model development, access and release, and achieving massive economic capture. If this resonates, please apply.
Skills
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