
Real job — pulled straight from Brillio’s careers page · Verified July 16, 2026 · No reposts.
Job description
Brillio is hiring a AI Engineer — a full-time, based in Guadalajara, Jalisco role. Apply directly on Brillio's careers page below.
AI Engineer - R01565292
Team: AI & Data Engineering : Data Science
Location: Guadalajara, Jalisco, Mexico
Commitment: Employee
Workplace Type: hybrid
Primary Skills
- Hypothesis Testing, T-Test, Z-Test, Regression (Linear, Logistic), Python/PySpark, SAS/SPSS, Statistical analysis and computing, Probabilistic Graph Models, Great Expectation, Evidently AI, Forecasting (Exponential Smoothing, ARIMA, ARIMAX), Tools(KubeFlow, BentoML), Classification (Decision Trees, SVM), ML Frameworks (TensorFlow, PyTorch, Sci-Kit Learn, CNTK, Keras, MXNet), Distance (Hamming Distance, Euclidean Distance, Manhattan Distance), R/ R Studio
Specialization
- Data Science Advanced: Data Specialist
Job requirements
- Design, build, and deploy AI agents and multi-agent systems using modern LLM frameworks and enterprise AI platforms
- Develop agentic workflows for business functions such as Finance, Legal, Operations, Sales, Support, and Growth
- Build production-ready applications using LLMs, RAG pipelines, tool calling, memory systems, and orchestration frameworks
- Integrate AI agents with enterprise platforms such as Google Workspace, Slack, CRM systems, internal APIs, databases, and knowledge repositories
- Evaluate and leverage foundation models across providers (Gemini, OpenAI, Anthropic, open-source models, etc.) based on use case requirements
- Work closely with business stakeholders to identify opportunities, prototype solutions rapidly, and iterate based on user feedback
- Create reusable agent frameworks, prompt libraries, evaluation pipelines, and deployment patterns
- Implement observability, guardrails, evaluation, and monitoring for AI applications in production
- Optimize agent performance for latency, accuracy, reliability, and cost
- Contribute to internal best practices around agent architecture, prompting, RAG, and AI engineering standards
- Stay current with emerging trends in autonomous agents, AI infrastructure, and enterprise AI adoption What We’re Looking For
- Strong software engineering fundamentals with experience building scalable backend or full-stack applications
- Hands-on experience with LLMs and modern AI application development
- Experience building AI agents, autonomous workflows, or agentic applications
- Familiarity with frameworks such as LangChain, LangGraph, CrewAI, Google ADK, AutoGen, Semantic Kernel, or similar
- Strong understanding of: o RAG architectures o Prompt engineering o Vector databases o Tool/function calling o AI workflow orchestration o Context and memory management
- Experience working with cloud platforms such as Google Cloud, AWS, or Azure
- Experience with Vertex AI, Gemini Enterprise, OpenAI APIs, or similar enterprise AI platforms is a strong plus
- Familiarity with APIs, microservices, event-driven systems, and enterprise integrations
- Comfortable working in ambiguous environments with evolving requirements and rapid experimentation cycles
- Strong communication skills and ability to collaborate with both technical and non-technical stakeholders
- Builder mindset with strong ownership and execution capabilities
- Experience deploying AI applications into production environments
- Familiarity with AI evaluation frameworks, observability, and guardrails
- Experience with Google Workspace APIs, Slack integrations, or enterprise automation tools
- Knowledge of fine-tuning, model optimization, or open-source LLM deployment
- Exposure to multi-agent coordination and autonomous decision-making systems
- Experience working in fast-paced startup or innovation environments
- 4–8 years of software engineering experience
- 2+ years of hands-on experience building AI/LLM-powered applications preferred Nice to Have
- Experience with Python-based AI ecosystems
- Knowledge of vector databases such as Pinecone, Weaviate, Chroma, or Vertex AI Vector Search
- Experience with Kubernetes, Docker, CI/CD, and cloud-native deployments
- Contributions to open-source AI projects or experimentation with emerging agentic frameworks
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Frequently asked questions
What skills are required for AI Engineer at Brillio?
The required skills for AI Engineer at Brillio include: Python, Spark, SAS, TensorFlow, PyTorch, Scikit-learn, Keras, R, LLM, RAG, LangChain, LangGraph, GCP, AWS, Azure, OpenAI, API, Microservices, Kubernetes, Docker, CI/CD.
What is the seniority level for AI Engineer at Brillio?
AI Engineer at Brillio is a Senior / Staff level position.
How do I apply for AI Engineer at Brillio?
You can view the full description and apply for AI Engineer at Brillio on EchoJobs: https://echojobs.io/job/brillio-ai-engineer-r01565292-6dt57.