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ML Engineer with LLM (Expert) @ VirtusLab
  • Kraków
ML Engineer with LLM (Expert) @ VirtusLab
Kraków, Kraków, Lesser Poland Voivodeship, Polska
VirtusLab
6. 6. 2024
Informacje o stanowisku

We are #VLteam – tech enthusiasts constantly striving for growth. The team is our foundation, that’s why we care the most about the friendly atmosphere, a lot of self-development opportunities, and good working conditions. Trust and autonomy are two essential qualities that drive our performance. We simply believe in the idea of ​​“measuring outcomes, not hours”. Join us & see for yourself!

Project Scope

As an ML Engineer, you will dive into various projects, applying your Python, Spark, and deep learning expertise to build solutions that address strategic problems, optimize workflows, and develop common frameworks that can be leveraged across the organization. Your work will reduce complexity and enhance the scalability of new projects, fostering a culture of efficiency and continuous improvement. We are looking for candidates with a strong Data Science Engineering background, focusing on ML pipelines and Gen AI, with expertise in both vendor and open-source LLM solutions.

Your key responsibilities would be

  • Developing and implementing common libraries, tools, and frameworks to standardize and accelerate development processes for future projects.
  • Diagnosing and resolving technical issues across multiple projects, ensuring high-quality, reusable solutions.
  • Utilizing Spark and Ray to parallelize computation for machine learning tasks.
  • Collaborating closely with engineering and data science teams, providing technical guidance to streamline daily work.
  • Championing best practices in code quality, security, and scalability by leading by example.
  • Making informed decisions to move the business forward.


Tech Stack

Python, Spark, Ray, PyTorch, TensorFlow, LLMs (OpenAI GPT, Anthropic, Llama), Google Cloud, Amazon Web Services, Kubernetes, Airflow, Docker

Project Challenges

  • Implementing and deploying ML models and automated pipelines.
  • Streamlining all phases of data-centric innovation, including data access, model development, productionization, testing, and monitoring of machine learning pipelines.
  • Designing and reviewing machine learning code for scale and robustness.
  • Collaborating with cross-functional teams to deliver ML solutions end-to-end.
  • Building good engineering practices including design and architecture for reusable components across whole organization.

Team

2 independent teams of 4-6 engineers


  • Hands-on experience with the productionisation of Machine Learning pipelines, both as a batch process and as a service, 5+ years of experience in the area
  • Hands-on experience with LLM models, preferably OpenAI and Anthropic, self-served is an advantage
  • Experience with one of the popular cloud vendors
  • Experience with data pipelines on Spark or Ray
  • Excellent software engineering practice, including selection of the best tool for a problem
  • Independence and ability to define and negotiate requirements
  • Very good command of English (C1+) and clear communication skills

Don’t worry if you don’t meet all the requirements. What matters most is your passion and willingness to develop. Moreover, B2B does not have to be the only form of cooperation. Apply and find out!

We are #VLteam – tech enthusiasts constantly striving for growth. The team is our foundation, that’s why we care the most about the friendly atmosphere, a lot of self-development opportunities, and good working conditions. Trust and autonomy are two essential qualities that drive our performance. We simply believe in the idea of ​​“measuring outcomes, not hours”. Join us & see for yourself!

Project Scope

As an ML Engineer, you will dive into various projects, applying your Python, Spark, and deep learning expertise to build solutions that address strategic problems, optimize workflows, and develop common frameworks that can be leveraged across the organization. Your work will reduce complexity and enhance the scalability of new projects, fostering a culture of efficiency and continuous improvement. We are looking for candidates with a strong Data Science Engineering background, focusing on ML pipelines and Gen AI, with expertise in both vendor and open-source LLM solutions.

Your key responsibilities would be

  • Developing and implementing common libraries, tools, and frameworks to standardize and accelerate development processes for future projects.
  • Diagnosing and resolving technical issues across multiple projects, ensuring high-quality, reusable solutions.
  • Utilizing Spark and Ray to parallelize computation for machine learning tasks.
  • Collaborating closely with engineering and data science teams, providing technical guidance to streamline daily work.
  • Championing best practices in code quality, security, and scalability by leading by example.
  • Making informed decisions to move the business forward.


Tech Stack

Python, Spark, Ray, PyTorch, TensorFlow, LLMs (OpenAI GPT, Anthropic, Llama), Google Cloud, Amazon Web Services, Kubernetes, Airflow, Docker

Project Challenges

  • Implementing and deploying ML models and automated pipelines.
  • Streamlining all phases of data-centric innovation, including data access, model development, productionization, testing, and monitoring of machine learning pipelines.
  • Designing and reviewing machine learning code for scale and robustness.
  • Collaborating with cross-functional teams to deliver ML solutions end-to-end.
  • Building good engineering practices including design and architecture for reusable components across whole organization.

Team

2 independent teams of 4-6 engineers

,[ Requirements: Python, MLOps, Machine learning, PyTorch / Tensorflow / DeepLearning, Strategic thinking, Communication, Spark / Ray, Cloud, DevOps, Scala Additionally: Building tech community, Flexible hybrid work model, Home office reimbursement, Language lessons, MyBenefit points, Private healthcare, Stretching, Training Package, Virtusity / in-house training, Free coffee, No dress code, Free snacks, Free beverages, Bike parking, Modern office, Shower, Kitchen.

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