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Reflection

Member of Technical Staff - Pre-Training Infra

London
Posted 4 months ago
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Our Mission Reflection’s mission is to build open superintelligence and make it accessible to all. We’re developing open weight models for individuals, agents, enterprises, and even nation states. Our team of AI researchers and company builders come from DeepMind, OpenAI, Google Brain, Meta, Character.AI, Anthropic and beyond. About the Role Build and scale distributed training systems that power frontier model pre-training. Work closely with research teams to design and operate large-scale training runs for foundation models. Develop infrastructure that enables efficient training across thousands of GPUs using modern distributed training frameworks. Optimize training throughput, stability, and efficiency for large model training workloads. Collaborate directly with pre-training researchers to translate experimental ideas into scalable, production-ready training systems. Improve performance of distributed training workloads through optimization of communication, memory usage, and GPU utilization. Build and maintain training pipelines that support large-scale datasets, checkpointing, and experiment iteration. Debug and resolve performance bottlenecks across distributed training stacks including model parallelism, GPU communication, and training runtime systems. Contribute to the development of systems that enable rapid experimentation and iteration on new training techniques. Ideal Experience Experience building or operating distributed training systems for large machine learning models. Strong experience working with modern distributed training frameworks such as Megatron, DeepSpeed, or similar large-scale training systems. Familiarity with large-scale model parallelism strategies (data, tensor, pipeline, or expert parallelism). Experience optimizing training throughput and GPU utilization in large distributed environments. Familiarity with GPU communication libraries such as NCCL and performance tuning for distributed workloads. Experience working closely with ML researchers to productionize experimental training workflows. Strong debugging skills across GPU compute, distributed training systems, and large-scale ML pipelines Experience working with large datasets and training pipelines used for foundation model pre-training. What We Offer: We believe that to build superintelligence that is truly open, you need to start at the foundation. Joining Reflection means building from the ground up as part of a small talent-dense team. You will help define our future as a company, and help define the frontier of open foundational models. We want you to do the most impactful work of your career with the confidence that you and the people you care about most are supported. Top-tier compensation: Salary and equity structured to recognize and retain the best talent globally. Health & wellness: Comprehensive medical, dental, vision, life, and disability insurance. Life & family: Fully paid parental leave for all new parents, including adoptive and surrogate journeys. Financial support for family planning. Benefits & balance: paid time off when you need it, relocation support, and more perks that optimize your time. Opportunities to connect with teammates: lunch and dinner are provided daily. We have regular off-sites and team celebrations.

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I’m in my final year doing Economics and I don’t know whether to apply for grad schemes now or do a masters first. What do you think?

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Graduate Consultant — 2026 Scheme

PwC·London, UK
£35,000/yr

Why you're a good match

Strong

Your economics background and your summer at a regional bank line up with what PwC looks for on the consulting scheme. Applications close in four weeks.

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You’ve got the grades and the economics background, and your bank internship is exactly the experience this scheme looks for. Apply soon — deadlines close within the month.

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Experience fit

Your summer at the bank plus your econometrics coursework map directly to the day-one responsibilities on this scheme — client modelling, market briefings, and deal support.

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Skills

Distributed Training Systems
Frontier Model Pre-training
Foundation Models
Large-Scale Training Runs
Distributed Training Frameworks
GPU Optimization
Training Throughput
Model Parallelism
Megatron
DeepSpeed
NCCL
Performance Tuning
Training Pipelines
Checkpointing
Debugging
Experimentation

Location

London, England, United Kingdom

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