Senior Deployed AI Engineer (Gemini) (PCS848)

Overseas

Córdoba

Remote

ARS 182,771,000 - 274,156,000

Full time

9 days ago
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Benefits offered by this job

USD compensation
Bi-monthly pay
Paid time off

Job summary

Overseas is seeking a Senior Deployed AI Engineer (Gemini) to design, build, and deliver full‑stack AI products for enterprise clients remotely across Latin America. You will own front‑end through data pipelines, deploy on cloud, and ensure production readiness with cost, latency, and quality measures.

The role emphasizes deep Google AI stack experience, hands‑on Python and TypeScript development, and collaboration with international clients.

Qualifications

  • 3–5 years software or data engineering experience with hands-on AI tools and development
  • Strong hands-on experience with Google AI stack, Gemini models, Vertex AI, and production deployments on GCP
  • Proficient in Python and TypeScript/JavaScript; experience building and consuming APIs
  • Front-end development experience with React or similar frameworks and at least one backend framework
  • Hands-on with RAG, embeddings, and vector search; familiarity with agentic frameworks such as Google ADK, LangGraph, or LangChain
  • Excellent English communication skills (C1/C2) for daily collaboration with international clients
  • Google Cloud certification is a differentiator; pursuing within two months is encouraged

Responsibilities

  • Develop user-facing interfaces in TypeScript/React and backend services in Python or Node
  • Implement agentic behavior including orchestration, tool calls, memory, and guardrails
  • Build retrieval-augmented generation pipelines with ingestion, chunking, embeddings, and vector/hybrid search
  • Design and build agents with Gemini models, Vertex AI, ADK, and Agent Engine
  • Configure Gemini Enterprise features (Agent Designer, Inbox, sandboxes) for clients
  • Connect Gemini Enterprise to client landscapes via connectors with governance and auditability
  • Develop grounded applications with Vertex AI Search, RAG Engine, and BigQuery as data backbone
  • Ensure cost, latency, and quality monitoring; write evaluation suites and tests
  • Deploy on cloud infrastructure (GCP/AWS/Azure) and maintain data pipelines feeding AI systems
  • Mentor junior engineers; contribute to accelerators and engineering standards

Skills

Python
TypeScript
JavaScript
React
APIs
RAG
Embeddings
Vector search

Education

Bachelor's or Master's in CS

Tools

Gemini Enterprise
Vertex AI
ADK
LangChain

Job description

Senior Deployed AI Engineer (Gemini) – Peru, Argentina, Brazil – Remote
About Our Client

Our client is a global data and AI consulting firm serving enterprise clients across multiple industries, including FMCG, financial services, healthcare, manufacturing, and the public sector, with a team of data and AI experts spread across 20+ countries.

About the Role

We're looking for a Senior Deployed AI Engineer specialized in Gemini Enterprise and the Google AI stack to design, build, and deliver full-stack AI products for enterprise clients. You'll work embedded with clients, take AI features from idea to production, and serve as the team's reference for Google's enterprise AI platform.

You'll own your components end to end: the front end, the service behind it, the data and retrieval pipelines feeding it, the deployment, and the evaluations proving it works. Beyond Google platform depth, you'll be expected to deliver confidently across the full stack, including full-stack development, data engineering, cloud infrastructure, and client communication.

Responsibilities
  • Develop user-facing interfaces in TypeScript and React, along with the backend services and APIs behind them in Python or Node
  • Implement agentic behavior including orchestration, tool and function calling, memory, and guardrails
  • Build retrieval-augmented generation pipelines covering ingestion, chunking, embeddings, and vector and hybrid search
  • Design and build agents with Gemini models, Vertex AI, the Agent Development Kit, and Agent Engine
  • Implement and configure Gemini Enterprise for clients, including Agent Designer, the Inbox for managing long-running agents, and agent sandboxes
  • Connect Gemini Enterprise to client application landscapes through first-party and partner connectors with proper permissions, governance, and auditability
  • Build grounded, retrieval-backed applications with Vertex AI Search, RAG Engine, grounding with Google Search, and BigQuery as the data backbone
  • Implement agent interoperability through the A2A protocol and MCP, and track Google's releases closely to translate new capabilities into client value
  • Write evaluation suites and regression tests for LLM-powered features, monitoring cost, latency, and quality in production
  • Deploy on cloud infrastructure across GCP, Azure, or AWS, and build and maintain the data pipelines feeding AI systems
  • Use agentic coding tools such as Claude Code, Gemini CLI, Codex, or Cursor daily with good judgment about verification and review
  • Communicate progress, trade-offs, and blockers clearly to clients and project leads, and support pre-sales when needed
  • Mentor junior engineers and contribute to internal accelerators, reusable components, and engineering standards
What We’re Looking For
  • 3 to 5 years of software or data engineering experience, with extensive hands‑on use of AI tools and LLM-based development over the past year
  • Strong hands‑on experience with the Google AI stack, including Gemini models, Vertex AI, and ideally Gemini Enterprise or ADK, with at least one solution taken to production on GCP
  • Strong programming skills in Python and TypeScript or JavaScript, with experience building and consuming APIs
  • Experience with front‑end development in React or similar frameworks, and at least one backend framework
  • Hands‑on experience with RAG, embeddings, and vector search, and with at least one agentic framework such as Google ADK, LangGraph, or LangChain
  • Strong working experience with GCP; Azure or AWS is a plus
  • Fluency with agentic coding tools such as Claude Code, Gemini CLI, Codex, or Cursor, and experience building and maintaining data pipelines
  • Professional English proficiency at C1 or C2 level minimum, as you'll work daily with international clients and colleagues
  • Bachelor's or Master's degree in computer science, engineering, or a related field, or equivalent practical experience
  • A Google Cloud certification is a strong differentiator at application; if you don't hold one yet, obtaining one within the first two months is required, with exam sponsorship and prep time provided. The preferred certification is Google Cloud Professional Machine Learning Engineer, covering Vertex AI, generative AI, and production ML
Nice to Have
  • Experience with MCP servers, multi‑agent patterns, or LLM evaluation tooling such as LangSmith, Langfuse, or promptfoo
  • Experience with Terraform or CI/CD pipelines
  • Experience with GCP, BigQuery, or Google Workspace integrations alongside Gemini Enterprise
Work Schedule
  • 100% remote setup so you can work wherever you're most productive
  • This position operates on a full‑time basis, with dedicated hours to ensure alignment with the team and delivery of quality work
  • Availability during US business hours
Compensation & Time Off
  • Compensation paid in USD
  • Paid bi-monthly on the 15th and 30th
  • Paid Time Off according to company policy
  • Holidays observed according to company guidelines
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