AI Infrastructure Engineer

Fin. The highest performing Customer Agent

Dublin

Hybrid

EUR 120,000 - 180,000

Full time

14 days+

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Benefits offered by this job

Competitive salary and equity
Lunch provided weekdays
Health and dental insurance
Pension scheme & match
Cycle-to-Work
MacBooks provided
Flexible paid time off

Job summary

Fin, the AI Customer Agent company, is hiring Senior+ AI Infrastructure Engineers to build training and serving systems for Fin's AI products. You will join a small, highly technical team working at the cutting edge of modern AI infrastructure, focusing on model training and inference at scale.

You will implement scalable training pipelines, build low-latency inference services, tune GPU performance, collaborate with ML scientists, and contribute to hiring and mentoring.

Qualifications

  • 5+ years of software engineering experience shipping high-quality products.
  • Degree in Computer Science, Computer Engineering, or a related field.
  • Experience with model training or model inference at scale.
  • Experience with low-level GPU work such as CUDA or Triton.
  • Comfortable delivering production systems at meaningful scale.
  • Strong fundamentals, ability to learn quickly, and clear communication.
  • Proficiency in at least one programming language (e.g., Python, Java, Go).

Responsibilities

  • Implement and scale training pipelines for large transformer and LLM models.
  • Build and optimize inference services with low latency and high reliability.
  • Work on GPU-level performance tuning and bottleneck identification across training and inference stacks.
  • Collaborate with ML scientists to implement cutting-edge training and inference methods.
  • Play an active role in hiring, mentoring, and developing other engineers.
  • Raise the bar for technical standards, reliability, and operational excellence.

Skills

Model training
Model inference at scale
Low‑level GPU coding

Education

Degree in CS/CE or equivalent

Tools

CUDA
Triton

Job description

Fin is the AI Customer Agent company on a mission to help businesses provide perfect customer experiences.

Our AI Agent Fin is the highest-performing AI Customer Agent on the market today, enabling businesses to deliver impeccable, always-on customer support across the customer journey – from service, to sales, to ecommerce. Powered by our own AI models, Fin resolves complex customer issues end-to-end across every channel, with minimal set‑up and integration. Fin can also be combined with our natively integrated Intercom help desk for one single system that is designed to meet the needs of modern day support teams.

Founded in 2011, Fin became one of the fastest growing companies and remains one of the largest private software companies in the world with nearly 30,000 global businesses using our products to transform their customer support. Driven by our core values, we push boundaries, build with speed and intensity, and relentlessly deliver incredible value to our customers.

What's the opportunity?

We’re looking for Senior+ AI Infrastructure Engineers to build the systems that train and serve Fin's next generation of AI products.

Fin is an AI company that builds from the GPU all the way up to a user agent that resolves millions of customer service queries a month.

You’ll join a small, highly technical team working at the cutting edge of modern AI infrastructure. The AI Infra team built the training pipelines and runs the inference for custom models like Fin Apex, which outperforms frontier models in customer service tasks, and is the foundation of the AI Group's full stack approach to AI.

We’re particularly interested in engineers who have:

  • A track record of working on model training or model inference at scale, or on low‑level GPU coding (e.g. CUDA, Triton). Experience with one is great, multiple is even better.
What will I be doing?

As a Senior AI Infrastructure Engineer focused on model training and inference, you will:

  • Implement and scale training pipelines for large transformer and LLM models, from data ingestion and preprocessing through distributed training and evaluation.
  • Build and optimize inference services that deliver low‑latency, high‑reliability experiences for our customers, including autoscaling, routing, and fallbacks.
  • Work on GPU‑level performance: tuning kernels, improving utilization, and identifying bottlenecks across our training and inference stack.
  • Collaborate closely with ML scientists to implement cutting edge training and inference methods and bring them to production.
  • Play an active role in hiring, mentoring, and developing other engineers on the team.
  • Raise the bar for technical standards, reliability, and operational excellence across Fin's AI platform.
Profile we’re looking for:

These are indicative, not hard requirements

We’re looking to hire Senior+ AI Infrastructure Engineers. You’re likely a great fit if:

  • You have 5+ years of experience in software engineering, with a strong track record of shipping high‑quality products or platforms.
  • You hold a degree in Computer Science, Computer Engineering, or a related field (or you have equivalent experience with very strong fundamentals).
  • You have hands‑on experience with one or more of the following:
    • Model training (especially transformers and LLMs).
    • Model inference at scale (again, especially transformers and LLMs).
    • Low‑level GPU work, such as writing CUDA or Triton kernels.
  • Comfortable working in production environments at meaningful scale (traffic, data, or organizational).
  • You communicate clearly, can explain complex technical topics to different audiences, and enjoy close collaboration with both engineers and non‑engineers.
  • You take pride in strong technical fundamentals, love learning, and are willing to invest in your own development.
  • Have deep knowledge of at least one programming language (for example Python, Ruby, Java, Go, etc.). Specific language experience is less important than your ability to write clean, reliable code and learn new stacks quickly.
Bonus skills & attributes

None of these are required, but they’re nice to have:

  • Experience at AI native companies that train and/or run inference for their own models (e.g. modern AI labs or AI‑native product companies).
  • Experience running training or inference workloads on Kubernetes.
  • Experience with AWS or other major cloud providers.
  • Production experience with Python in ML or infrastructure contexts.
  • Demonstrated passion for technology through personal projects, open source, meetups, or publishing content about your work and learnings
Benefits

We are a well treated bunch, with awesome benefits! If there’s something important to you that’s not on this list, talk to us!

  • Competitive salary and equity in a fast-growing start-up
  • We serve lunch every weekday, plus a variety of snack foods and a fully stocked kitchen
  • Regular compensation reviews - we reward great work!
  • Unlimited access to Claude Code and best-in-class AI tools; experimentation & building is encouraged & celebrated.
  • Pension scheme & match up to 4%
  • Peace of mind with life assurance, as well as comprehensive health and dental insurance for you and your dependents
  • Flexible paid time off policy
  • Paid maternity leave, as well as 6 weeks paternity leave for fathers, to let you spend valuable time with your loved ones
  • If you’re cycling, we’ve got you covered on the Cycle-to-Work Scheme. With secure bike storage too
  • MacBooks are our standard, but we also offer Windows for certain roles when needed.

#LI-Hybrid

At Fin, we want to give people what they need to do the best work of their careers. Our benefits and programs are designed to support your health and wellbeing, your family, your time away from work, and your financial future. Offerings vary by location in line with local practices and requirements.
Learn more about working at Fin and the benefits we offer at fin.ai/careers.

Policies

Fin has a hybrid working policy. We believe that working in person helps us stay connected, collaborate easier and create a great culture while still providing flexibility to work from home. We expect employees to be in the office at least three days per week.

We have a radically open and accepting culture at Fin. We avoid spending time on divisive subjects to foster a safe and cohesive work environment for everyone. As an organization, our policy is to not advocate on behalf of the company or our employees on any social or political topics out of our internal or external communications. We respect personal opinion and expression on these topics on personal social platforms on personal time, and do not challenge or confront anyone for their views on non-work related topics. Our goal is to focus on doing incredible work to achieve our goals and unite the company through our core values.

Fin values diversity and is committed to a policy of Equal Employment Opportunity. Fin will not discriminate against an applicant or employee on the basis of race, color, religion, creed, national origin, ancestry, sex, gender, age, physical or mental disability, veteran or military status, genetic information, sexual orientation, gender identity, gender expression, marital status, or any other legally recognized protected basis under federal, state, or local law.

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