Role overview

AI/ML R&D Engineer

Requirements and responsibilities

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MAIN TASKS & RESPONSIBILITIES

  • Design and develop machine learning models and algorithms for various aspects of the localization and business workflow processes, including machine translation, LLM finetuning, and quality assurance
  • Take ownership of key projects from definition to deployment, ensuring that they meet technical requirements and maintain momentum and direction until delivery
  • Evaluate and select appropriate machine-learning techniques and algorithms to solve specific problems
  • Implement and optimize machine learning models and technologies using Python, TensorFlow, and other relevant tools and frameworks
  • Perform statistical analysis and fine-tuning using test results
  • Deploy machine learning models and algorithms using appropriate techniques and technologies, such as containerization using Docker and deployment to cloud infrastructure
  • Use AWS technologies (including but not limited to Sagemaker, EC2, S3) to deploy and monitor production environments
  • Keep abreast of developments in the field, with a dedication to learning in the role
  • Document diligently and communicate thoughtfully about ML experimentation, design, and deployment
  • Project scope: Define and design solutions to machine learning problems. Integration with larger systems done with the guidance of more senior engineers.

Success Indicators for a Machine Learning Engineer

  • Effective Model Development: Success is evident when the models developed are accurate, efficient, and align with project requirements.
  • Positive Team Collaboration: Demonstrated ability to collaborate effectively with various teams and stakeholders, contributing positively to project outcomes.
  • Continuous Learning and Improvement: A commitment to continuous learning and applying new techniques to improve existing models and processes.
  • Clear Communication: Ability to articulate findings, challenges, and insights to a range of stakeholders, ensuring understanding and appropriate action.
  • Ethical and Responsible AI Development: Adherence to ethical AI practices, ensuring models are fair, unbiased, and responsible.

Education

  • BSc in Computer Science, Mathematics or similar field; Master’s degree is a plus

Experience

  • Minimum 3+ years experience as a Machine Learning Engineer or similar role

Skills & Knowledge

  • Ability to write robust, production-grade code in Python
  • Excellent communication and documentation skills
  • Strong knowledge of machine learning techniques and algorithms, including supervised and unsupervised learning, deep learning, and reinforcement learning
  • Hands-on, high proficiency experience with machine learning frameworks such as TensorFlow, PyTorch, and Scikit-learn
  • Experience with natural language processing (NLP) techniques and tools
  • Strong communication and collaboration skills, with the ability to explain complex technical concepts to non-technical stakeholders
  • Experience taking ownership of projects from conception to deployment, and mentoring more junior team members
  • Hands-on experience with AWS technologies including EC2, S3, and other deployment strategies. Experience with SNS, Sagemaker a pls.
  • Experience with ML management technologies and deployment techniques, such as AWS ML offerings, Docker, GPU deployments, etc
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Browse stack
FocusMachine Learning EngineeringRole area
Seniority signalSeniorCandidate level
StackAWS, Docker, LLMPrimary skills
Location1 accepted countryEligibility

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