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Velir
Senior AI/ML Engineer
engineeringfull-timeRemote
SALARY
Not listed
WORK TYPE
remote
JOB TYPE
full-time
INDUSTRY
general
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About the role
Overview
Senior AI/ML Engineers are senior individual contributors who design, build, and deploy production-grade AI/ML systems for both client-facing and internal products. They partner with leadership and cross-functional teams to translate business needs into scalable ML and LLM-based solutions. This role does not typically include direct reports but requires strong technical leadership, mentorship, and influence across teams.
Responsibilities
AI/ML System Design & Leadership
- Lead the design and implementation of scalable ML systems, including supervised, unsupervised, and LLM-based solutions
- Translate research and prototypes into production-ready systems
- Partner with stakeholders to identify high-impact AI/ML opportunities and define optimal technical approaches
- Provide technical mentorship and contribute to team upskilling
LLM & Production AI Systems
- Build and operate LLM pipelines, including prompt design, fine-tuning, and evaluation
- Develop RAG-based systems using embeddings, vector stores, and retrieval strategies
- Design evaluation frameworks, feedback loops, and datasets to continuously improve model performance
- Create reusable tooling to accelerate experimentation, deployment, and monitoring
MLOps & Deployment
- Own end-to-end ML lifecycle: data pipelines, training, deployment, monitoring, and iteration
- Establish best practices for reproducibility, observability, CI/CD, and model versioning
- Partner with platform/DevOps teams to ensure reliability and scalability
- Promote responsible AI practices, including governance, fairness, and transparency
Cross-Functional Collaboration
- Lead cross-functional initiatives across data engineering, analytics, and AI/ML
- Translate complex ML concepts into clear recommendations for technical and non-technical audiences
- Collaborate with clients and internal teams to plan and deliver AI/ML solutions
- Contribute documentation, frameworks, and shared best practices
Project Execution
- Scope and lead complex AI/ML initiatives aligned to business outcomes
- Align stakeholders and drive execution across teams
- Establish clear success metrics and ensure delivery of high-impact solutions
Skills & Qualifications
- 5–7 years of experience in ML engineering, AI engineering, or related fields, with production deployment experience
- Strong programming skills in Python and SQL; experience with PyTorch and HuggingFace
- Experience building LLM applications, including RAG, embeddings, and vector search
- Experience with cloud platforms (AWS or Azure; e.g., SageMaker, Bedrock, Azure ML)
- Strong understanding of ML fundamentals: data design, training, evaluation, and experimentation
- Familiarity with LLM alignment techniques
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