Middle ML/LLM Engineer

We are seeking a skilled Machine Learning Engineer with a focus on Generative AI and Large Language Models (LLMs) to join our team.


Responsibilities: 
 

  • Prompt Engineering: Design, test, and optimize prompts for LLMs to enhance user interaction and generate contextually relevant results.
  • Agent-Based Systems & RAG: Develop intelligent agent systems and implement Retrieval-Augmented Generation (RAG) pipelines for applications such as task automation and dynamic content generation.
  • Data Pipeline Development: Build and maintain reliable data pipelines to support LLM training and inference workflows, ensuring seamless integration with other systems.
  • Generative AI Development: Develop, train, fine-tune, and evaluate large language models (LLMs) and generative AI models for diverse business use cases.
  • Performance Optimization: Conduct rigorous evaluations and performance tuning for LLMs to meet production-grade requirements for latency, accuracy, and robustness.
  • Security & Compliance: Apply best practices for data security and compliance, especially when handling sensitive or regulated data.
  • Cross-Functional Collaboration: Work closely with product, engineering, and data science teams to align AI models with product requirements and business objectives. 

Experience: 
 

  • 2-3 years of experience in Machine Learning with a focus on Generative AI and LLMs. 
  • Experience with AWS Bedrock and related services for large model deployment.
  • Proven experience with self-managed ML environments and infrastructure (e.g., Kubernetes, Docker, Serverless).

Technical Skills: 
 

  • Proficiency in Python, including experience with AWS Lambda.
  • Knowledge of Generative AI techniques, including Zero-Shot, Few-Shot, and Chain-of-Thought prompting.
  • Demonstrated ability in LLM training, fine-tuning, and evaluation.
  • Familiarity with MLOps tools and practices, including versioning, monitoring, and CI/CD pipelines.

Would be a plus:
 

  • Experience with TensorFlow, and/or PyTorch
  • Familiarity with MLOps tools like MLflow, Kubeflow, or SageMaker Pipelines for versioning, monitoring, and CI/CD integration.

Working conditions:
 

  • Opportunity to work with a diverse portfolio of clients and industries, providing unique challenges and opportunities for growth.
  • Collaborative and supportive work environment with a focus on continuous learning and professional development.
  • Paid Vacation (16 days), Documented/Undocumented Sick Leave, Leave for Significant Life Events;
  • Quarterly Sports/English bonuses;
  • Compensation for medical insurance;
  • Flexible working hours and remote work options available;
  • Exciting events, corporate parties, and pizza parties at the office;
  • Gifts from the company;
  • Friendly environment and a wonderful team.

Join us!

Published 27 March
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