Member of Technical Staff, Machine Learning
Ireland, England, United Kingdom · Full Time
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- Salary
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- Openings
- 1
- Posted
- 7 hours ago
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Where you'll work
Job description
About A1
A1 aims to create an intelligent smart assistant for everyday users, integrating AI into common applications like email, notes, and tasks. Their product emphasizes reliable, long-duration workflows, persistent context tracking, and real-world task completion, enabling users to save approximately 90% of the usual time spent on these tasks.
Role Overview
As a Member of Technical Staff focused on Machine Learning, you will contribute to building foundational ML modules and engage with actual production systems from the outset. The position offers exposure to large-scale ML deployments outside typical research environments and encourages engineers to develop strong system judgment through continuous iteration and debugging.
Key Responsibilities
- Develop and refine ML components involved in data processing, training, evaluation, and inference.
- Fine-tune and customize models within broader production frameworks.
- Create evaluation and testing mechanisms to analyze model performance.
- Build and support data pipelines handling real and synthetic datasets.
- Troubleshoot model behavior, performance issues, and incidents in production.
- Deliver incremental improvements informed by real user feedback.
- Collaborate closely with senior ML personnel and product teams.
- Operate effectively within constraints related to latency, cost, reliability, and safety.
Technology Stack
- Python programming language
- Frameworks including PyTorch and JAX
- Deployment on GPU-powered production ML systems
Desired Qualifications and Traits
- Solid understanding of machine learning principles and contemporary neural network architectures.
- Practical experience with ML model training, fine-tuning, or production deployment.
- Proficiency in producing production-level code and adapting to new tools swiftly.
- Inquisitive, receptive to coaching, and motivated by operational ML environments.
- Capability to manage ambiguous situations with guidance and progressively assume more responsibility.
- Focused on delivering results through iterative development and ongoing enhancement.
Expected Outcomes
- ML models deployed meet criteria for accuracy, latency, and reliability.
- Production challenges are promptly detected, efficiently diagnosed, and effectively resolved.
- Data pipelines, model training processes, and inference mechanisms are dependable, reproducible, and easy to maintain.
- Strong collaboration between engineering, product, and research teams to deliver dependable AI-driven features.
- Continuous iterations guided by empirical data leading to measurable improvements.
Team Culture and Work Style
A1 believes in small, highly skilled teams making collective decisions rapidly while balancing quality and learning. Candidates should demonstrate strong organizational skills, sound judgment, and the ability to work autonomously. The ultimate goal is to create a remarkable AI product that delivers tangible benefits globally.
Hiring Process
The recruitment process includes three to four virtual or onsite interviews with technical team members. Decisions are communicated promptly. Exceptional candidates will receive offers to join a team dedicated to bringing AI capabilities to billions worldwide.