Founding AI Engineer
Listed on 2025-12-14
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IT/Tech
AI Engineer, Machine Learning/ ML Engineer, Data Scientist, Data Engineer
Transform language models into real-world, high-impact product experiences.
A1 is a self-funded AI group, operating in full stealth. We’re building a new global consumer AI application focused on an important but under explored use case.
You will shape the core technical direction of A1 - model selection, training strategy, infrastructure, and long-term architecture. This is a founding technical role: your decisions will define our model stack, our data strategy, and our product capabilities for years ahead.
You won’t just fine-tune models - you’ll design systems: training pipelines, evaluation frameworks, inference stacks, and scalable deployment architectures. You will have full autonomy to experiment with frontier models (LLaMA, Mistral, Qwen, Claude-compatible architectures) and build new approaches where existing ones fall short.
Why This Role MattersYou are creating the intelligence layer of A1’s first product, defining how it understands, reasons, and interacts with users.
Your decisions shape our entire technical foundation — model architectures, training pipelines, inference systems, and long-term scalability.
You will push beyond typical chatbot use cases, working on a problem space that requires original thinking, experimentation, and contrarian insight.
You influence not just how the product works, but what it becomes, helping steer the direction of our earliest use cases.
You are joining as a founding builder, setting engineering standards, contributing to culture, and helping create one of the most meaningful AI applications of this wave.
Build end-to-end training pipelines: data → training → eval → inference
Design new model architectures or adapt open-source frontier models
Fine-tune models using state-of-the-art methods (LoRA/QLoRA, SFT, DPO, distillation)
Architect scalable inference systems using vLLM / Tensor
RT-LLM / Deep SpeedBuild data systems for high-quality synthetic and real-world training data
Develop alignment, safety, and guardrail strategies
Design evaluation frameworks across performance, robustness, safety, and bias
Own deployment: GPU optimization, latency reduction, scaling policies
Shape early product direction, experiment with new use cases, and build AI-powered experiences from zero
Explore frontier techniques: retrieval-augmented training, mixture-of-experts, distillation, multi-agent orchestration, multimodal models
You take ownership - you solve problems end-to-end rather than wait for perfect instructions
You learn through action - prototype → test → iterate → ship
You’re calm in ambiguity - zero-to-one building energises you
You bias toward speed with discipline - V1 now > perfect later
You see failures and feedback as essential to growth
You work with humility, curiosity, and a founder’s mindset
You lift the bar for yourself and your teammates every day
Strong background in deep learning and transformer architectures
Hands-on experience training or fine-tuning large models (LLMs or vision models)
Proficiency with PyTorch, JAX, or Tensor Flow
Experience with distributed training frameworks (Deep Speed, FSDP, Megatron, ZeRO, Ray)
Strong software engineering skills — writing robust, production-grade systems
Experience with GPU optimization: memory efficiency, quantization, mixed precision
Comfortable owning ambiguous, zero-to-one technical problems end-to-end
Experience with LLM inference frameworks (vLLM, Tensor
RT-LLM, Faster Transformer)Contributions to open-source ML libraries
Background in scientific computing, compilers, or GPU kernels
Experience with RLHF pipelines (PPO, DPO, ORPO)
Experience training or deploying multimodal or diffusion models
Experience in large-scale data processing (Apache Arrow, Spark, Ray)
Prior work in a research lab (Google Brain, Deep Mind, FAIR, Anthropic, OpenAI)
Extreme ownership and autonomy from day one - you define and build key model systems.
Founding-level influence over technical direction, model architecture, and product strategy.
Remote-first flexibility
High-impact scope—your work becomes core infrastructure of a global consumer AI product.
Competitive compensation and…
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