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Middle AI/ML Engineer – GenAI, AWS
Location
Colombia
Posted
58 days ago
Salary
0
Seniority
Junior
Job Description
Middle AI/ML Engineer – GenAI, AWS
Provectus
• Design and deliver ML pipelines from experimentation to production; • Build and optimize models — supervised, unsupervised, and generative AI; • Write clean, tested, modular Python code; • Deploy and monitor models; track performance and prevent drift; • Contribute to LLM applications: RAG systems and agent workflows; • Use AI coding tools on every task to move faster and write better code; • Mentor junior engineers and give actionable code review feedback; • Work closely with DevOps, Data Engineering, and Solutions Architects; • Share knowledge through docs, presentations, or internal workshops; • Stay current with ML research, GenAI, and agentic frameworks; • Propose process improvements and reusable ML accelerators; • Participate in architectural design and trade-off discussions.
Job Requirements
- 1–3 years of hands-on ML engineering experience;
- At least one ML model deployed to production (or near-production);
- Team-based or client-facing project experience;
- Demonstrated use of AI-assisted development tools;
- Education: Bachelor's/Master's in CS, Data Science, Math, or equivalent practical experience;
- Solid grasp of supervised/unsupervised ML: algorithms, evaluation, trade-offs;
- Deep learning hands-on experience: CNNs, RNNs, Transformers — training and fine-tuning;
- Depth in at least one domain: NLP, Computer Vision, Recommendation, or Time Series;
- Experience building LLM apps with OpenAI, Anthropic, or Hugging Face APIs;
- Hands-on RAG design: chunking, embedding, retrieval, generation;
- Familiarity with vector databases (OpenSearch, Pinecone, Chroma, FAISS);
- Understanding of prompt engineering and LLM evaluation;
- Proficient with AI coding tools (Claude Code, Cursor, Copilot, etc.) — beyond autocomplete;
- Experience building tool-using, stateful agents with an orchestration framework;
- Understanding of Model Context Protocol (MCP) — consume or build MCP servers;
- Can write technical specs for AI execution and review/correct AI-generated output;
- Aware of agent monitoring, evaluation, and cost optimization in production;
- Solid AWS: SageMaker, Lambda, S3, ECR, ECS, API Gateway;
- Familiarity with Amazon Bedrock (model invocation, Knowledge Bases, Agents);
- Basic awareness of Infrastructure as Code (Terraform or CloudFormation);
- Production ML deployment experience;
- Experiment tracking with MLflow, W&B, or similar;
- CI/CD pipelines for ML; model monitoring and drift detection;
- Advanced Python (async/await, OOP, packaging); strong pandas, NumPy, SQL;
- Docker for containerized ML workloads.
Benefits
- Competitive salary based on competencies and market rates;
- Premium AI tooling: Claude Code, Cursor, and Provectus AI toolkit;
- Mentorship from Senior ML Engineers and Tech Leads;
- Clear growth path: Mid-Level → Senior ML Engineer → Tech Lead;
- Learning budget for courses, certifications, and conferences;
- Remote-first culture; work on projects across LATAM, North America, and Europe;
- Health benefits.
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