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Machine Learning Engineer

Ust España & Latam

Jaboatão dos Guararapes

Presencial

BRL 120.000 - 180.000

Tempo integral

Há 16 dias

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Resumo da oferta

A prominent tech company in Brazil is seeking a Machine Learning Engineer to join their expanding AI team. The role involves designing, training, and deploying ML models that enhance business processes. Candidates should have advanced Python skills, hands-on experience with LLMs, and a relevant degree. This position offers the opportunity to collaborate with various teams and contribute to impactful ML projects. The ideal candidate will have at least 3 years of experience in ML systems deployment and will thrive in a dynamic work environment.

Qualificações

  • 3+ years building and deploying ML systems.
  • English advanced (B2) required.
  • Strong experience with LLMs including fine-tuning and prompt design.

Responsabilidades

  • Design, train, fine-tune, and deploy ML / LLM models for production.
  • Build RAG pipelines using vector databases and frameworks.
  • Collaborate cross-functionally with teams.

Conhecimentos

Python
ML systems deployment
Prompt engineering
Fine-tuning LLMs
Data engineering collaboration
Deep understanding of ML lifecycle
Anomaly detection

Formação académica

Bachelor's or Master's in Computer Science, Data Science, or related field

Ferramentas

PyTorch
TensorFlow
Scikit-Learn
Hugging Face Transformers
SQL
Descrição da oferta de emprego

We are still looking for talent... and we would love for you to join our team! For over 25 years, UST has worked alongside the world's best companies to make a real impact through business transformation. Driven by technology, inspired by people, and guided by our purpose, UST supports clients from design to implementation. Together, with more than 30,000 employees in 30 countries, we build to create limitless impact, reaching billions of lives in the process.

About the Role: we're looking for a talented Machine Learning Engineer to join our growing AI team!

About the Role

As an ML Engineer on our team, you will design, train, fine-tune, and deploy ML / LLM models that power autonomous exception resolution, anomaly detection, and explainable insights. You'll work hands‑on with multiple LLM ecosystems like OpenAI GPT, Anthropic Claude, Google Gemini, and Meta LLaMA. You will implement retrieval‑augmented generation (RAG) pipelines, develop prompt engineering and safety techniques, and integrate memory and explainability into agentic workflows.

Key Responsibilities
  • Design, train, fine‑tune, and deploy ML / LLM models for production.
  • Build RAG pipelines using vector databases and frameworks such as LangChain, LangGraph, and MCP.
  • Develop prompt engineering, optimization, and safety techniques for agentic LLM interactions.
  • Collaborate with data engineering to maintain data pipelines for ML workloads.
  • Conduct feature engineering and embeddings generation on structured and unstructured data.
  • Implement model monitoring, drift detection, and retraining pipelines.
  • Explore emerging LLM / SLM architectures and multi‑agent orchestration patterns.
  • Collaborate cross‑functionally with R&D, data science, product, and engineering teams.
  • Mentor junior engineers and contribute to best practices in ML engineering.
Required Qualifications
  • Bachelor's or Master's degree in Computer Science, Data Science, Machine Learning, or related field.
  • 3+ years building and deploying ML systems.
  • English advance (B2)
  • Strong Python skills and experience with PyTorch, TensorFlow, Scikit‑Learn, Hugging Face Transformers.
  • Hands‑on experience with LLMs / SLMs including fine‑tuning, prompt design, and inference optimization.
  • Familiarity with at least two of the following: OpenAI GPT, Anthropic Claude, Google Gemini, Meta LLaMA.
  • Knowledge of vector databases, embeddings, and RAG pipelines.
  • Experience working with both structured and unstructured data at scale.
  • Understanding of SQL and distributed data frameworks like Spark or Ray.
  • Deep knowledge of ML lifecycle : data preparation, training, evaluation, deployment, and monitoring.
Preferred Qualifications
  • Experience with agentic frameworks (LangChain, LangGraph, MCP, AutoGen).
  • Understanding of AI safety, guardrails, and explainability.
  • Hands‑on experience deploying ML / LLM solutions on AWS, GCP, or Azure.
  • Familiarity with MLOps practices including CI / CD, monitoring, and observability.
  • Background in anomaly detection, fraud / risk modeling, or behavioral analytics.
  • Contributions to open‑source AI / ML projects or research publications.

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