AI Engineer (Ro)

AI Engineer (Ro)

10 ago
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Altro
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Ro

10 ago

Altro

Ro

Who We Are
Based in The Romania Excellence Centre, Bucharest - our client is seeking for experienced professionals who value teamwork, pioneering technology, and innovation. People who want to take their careers to the next level of success. You will be part of a global and diverse team, contribute to all stages of software development lifecycle and lead the implementation, deployment and test of multi-agent systems.

Also, This Role Will Give You The Chance To

Use frameworks like Google Agent Development Kit (Google ADK) and LangGraph to build robust, controllable, and observable agentic architectures

Assist in the design of LLM-powered agents and multi-agent workflows (planning, tool use, orchestration, memory, and human-in-the-loop)

So if you are an experienced AI Engineer please join our team to create the next big thing in digital banking.

What You’ll Be Doing

Design and build complex agentic systems with multiple interacting agents

Implement robust orchestration logic (state machines / graphs, retries, fallbacks, escalation to humans)

Implement RAG pipelines, tool calling, and sophisticated system prompts for optimal reliability, latency, and cost control

Apply core ML concepts to evaluate and improve agent performance, including dataset curation and bias/safety checks

Lead the development of agents using Google ADK and/or LangGraph, leveraging advanced features for orchestration, memory, evaluation, and observability

Integrate with supporting libraries and infrastructure (e.g., LangChain/LlamaIndex, vector databases, message queues, monitoring tools) with minimal supervision

Define success metrics, build evaluation suites for agents (automatic + human evaluation), and drive continuous improvement





Curate and maintain comprehensive prompt/test datasets; run regression tests for new model versions and prompt changes

Deploy and operate AI services in production, establishing CI/CD pipelines, observability, logging, and tracing

Debug complex failures end-to-end, identifying and document root causes across models, prompts, APIs, tools, and data

Work closely with product managers and stakeholders to shape requirements, translate them into agent capabilities, and manage expectations

Document comprehensive designs, decisions, and runbooks for complex systems

What We’re Looking For

Bachelor’s degree in Computer Science, Engineering, or related field

At least 3 years of experience as Software Engineer / ML Engineer / AI Engineer, with at least 1-2 years working directly with LLMs in real applications

Strong proficiency in Python (core language features, packaging, testing, async, type hints)

Very strong software engineering practices: version control (Git), unit/integration testing, code reviews, CI/CD

Experience building and consuming REST/gRPC APIs and integrating external tools/services

Understanding of core ML concepts: supervised/unsupervised learning, train/validation/test splits, overfitting, regularization, and common metrics (precision, recall, F1, ROC-AUC, etc.)

Good understanding of deep learning basics (neural networks, embeddings) and at least one ML/DL framework (e.g., PyTorch, TensorFlow, JAX, scikit-learn)

Deep practical knowledge of large language models

Tokenization, context windows,



temperature, top‑p, system vs user prompts

Prompt engineering patterns (ReAct, chain‑of‑thought, tool‑calling/tool‑use)

Fine‑tuning / adapters / instruction‑tuning, or experience with RAG as an alternative

Experience building LLM‑powered applications end‑to‑end: from idea → prototype → production

Familiarity with safety and reliability considerations: hallucinations, guardrails, content filtering, privacy

Conceptual understanding of modern agentic frameworks and patterns (stateful graphs, multi‑agent coordination, human‑in‑the‑loop, memory, and evaluation).

Hands‑on experience with at least one of: Google Agent Development Kit (ADK) – building multi‑agent workflows, using its orchestration, tools, and evaluation features or LangGraph – designing graph‑based, stateful agent workflows with cycles, branches, and durable execution

Candidates must be able to read, reason about, and extend ADK/LangGraph‑based codebases

Direct production experience with both ADK and LangGraph is a strong plus

Experience working with vector databases (e.g., Pinecone, Weaviate, pgvector, Chroma) for retrieval‑augmented generation

Comfortable with SQL and basic data modeling

Experience deploying on at least one major cloud platform (GCP, AWS, Azure) and using managed services (e.g., serverless runtimes, container orchestration, secrets management)

Nice‑to‑Have Experience With

Vertex AI / Gemini or other hosted LLM ecosystems

Related frameworks and tools: LangChain, LlamaIndex, semantic search, evaluation frameworks (e.g., RAGAS, custom eval harnesses)

Monitoring and observability stacks (OpenTelemetry, Prometheus/Grafana/NewRelic, Datadog, etc.)

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