drjobs LLMOps Engineer - R

LLMOps Engineer - R

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1 Vacancy
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Job Location drjobs

Tampa, FL - USA

Monthly Salary drjobs

Not Disclosed

drjobs

Salary Not Disclosed

Vacancy

1 Vacancy

Job Description

About Brillio:

Brillio is one of the fastest growing digital technology service providers and a partner of choice for many Fortune 1000 companies seeking to turn disruption into a competitive advantage through innovative digital renowned for its world-class professionals referred to as Brillians distinguishes itself through their capacity to seamlessly integrate cutting-edge digital and design thinking skills with an unwavering dedication to client satisfaction.
Brillio takes pride in its status as an employer of choice consistently attracting the most exceptional and talented individuals due to its unwavering emphasis on contemporary groundbreaking technologies and exclusive digital projects. Brillios relentless commitment to providing an exceptional experience to its Brillians and nurturing their full potential consistently garners them the Great Place to Work certification year after year.

Role: LLMOps Engineer
Location: Tampa FL 3days Hybrid
Responsibilities
The candidate will be responsible for operationalizing large language models implementing scalable solutions and driving innovation in AI/ML deployment practices
This role requires someone who is passionate about learning new technologies investigating cutting-edge techniques and providing informed technical decisions
Why Its Important: Strategic or operational significance of solving this problem
Success Metrics: What outcomes are expected when the solution is fully functional
Design implement and maintain end-to-end pipelines for LLM training fine-tuning validation and deployment
Build and optimize scalable infrastructure for large language model operations
Deploy LLMs to production environments with prompt management observability serverless deployment proper monitoring scaling and performance optimization
Design develop and maintain RESTful APIs endpoints for LLM inference and model interactions
Ensure API reliability performance optimization rate limiting authentication and comprehensive documentation
Implement comprehensive monitoring solutions for model performance drift detection and system health metrics
Research and evaluate emerging LLMOps techniques tools and methodologies
Provide informed recommendations on technology choices architecture decisions and implementation strategies
Establish and document best practices for LLM operations deployment patterns and governance frameworks
Develop prototypes and POCs to validate new approaches and technologies
Work closely with data scientists ML engineers DevOps teams and product managers
Create comprehensive documentation for systems processes and architectural decisions
Mentor team members and share expertise through technical presentations and training sessions
Optimize data preprocessing and feature engineering pipelines for LLM training and inference
Implement data validation quality checks and lineage tracking for model training datasets
Design efficient data storage and retrieval systems for large-scale model artifacts and training data
Implement model governance frameworks including audit trails compliance monitoring and approval workflows
Ensure secure model deployment practices access controls and data privacy measures
Identify and mitigate risks associated with LLM deployment and operations
Maintain development staging and production environments for LLM workflows Qualifications
Bachelors degree in Computer Science Statistics Engineering or a related field (exceptional candidates without advanced degrees will be considered).
LLMOps Engineer with software engineering experience
Education: B.E/ in Computer Science or related technical degree OR Equivalent
Experience:
6-12 years of experience building production-quality software (at least 5 years in Python) 2 years in LLMOps
6 years of software development experience with strong programming skills in Python SQL
2 years of hands-on experience LLMOps
1 years of experience with machine learning operations model deployment and lifecycle management
Proficiency with at least one major cloud provider (AWS or GCP) and their ML services
Experience with Docker Kubernetes and container orchestration for ML workloads
Strong experience in designing building and maintaining production-grade APIs for ML services
Proficiency with Git CI/CD pipelines and DevOps practices
Understanding of LLM architectures training methodologies and fine-tuning techniques
Knowledge of ML pipeline design model monitoring and deployment strategies
Understanding of distributed systems scalability patterns and microservices architecture
Good-to-Have Technical Skills
Experience with HuggingFace Transformers PyTorch TensorFlow or similar frameworks
Knowledge of prompt optimization RAG (Retrieval-Augmented Generation) architectures
Experience with vector search
Know what its like to work and grow at Brillio: Employment Opportunity Declaration

Employment Type

Full-Time

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