Full Stack Architect - Agentic AI
Job in
Fremont, Alameda County, California, 94537, USA
Listed on 2026-07-08
Listing for:
Relanto
Full Time
position Listed on 2026-07-08
Job specializations:
-
Software Development
Cloud Engineer - Software, AI Engineer (Applied/Software), DevOps
Job Description & How to Apply Below
- Architect and deliver end-to-end AI-powered solutions for high-tech clients using GCP-native components and Agentic AI frameworks.
- Design scalable backend services using Python (FastAPI, Flask, or Django) and integrate them with LLMs and autonomous agent frameworks (Lang Chain, Auto Gen, CrewAI).
- Define solution architectures leveraging GCP services such as Vertex AI, Big Query, Cloud Functions, Pub/Sub, Cloud Run, and Firestore.
- Lead the design and implementation of frontend applications using React, Angular, or Vue, ensuring seamless UX/UI integration with AI capabilities.
- Collaborate with clients, product managers, and engineering teams to capture business requirements and convert them into technical roadmaps.
- Drive technical workshops, POCs, and architectural reviews focused on AI/ML and cloud transformation strategies.
- Implement and optimize vector database integrations (e.g., Pinecone, Weaviate, FAISS) and embedding pipelines on GCP.
- Define and enforce best practices in cloud-native Dev Ops, microservices, and CI/CD automation using GCP tools like Cloud Build, Artifact Registry, and Cloud Monitoring.
- Provide architectural guidance and mentorship to distributed engineering teams following Agile delivery models.
- 10+ years of experience in full stack architecture and software engineering, ideally in high-tech product or platform environments.
- Strong hands-on experience with Python backend frameworks (FastAPI, Flask, Django).
- Proficient in frontend development using Angular with a solid understanding of UX patterns.
- Hands-on experience with Agentic AI frameworks such as Lang Chain, Auto Gen, or CrewAI.
- Deep knowledge of LLM APIs (OpenAI, Claude, Gemini, Mistral) and prompt engineering strategies.
- Solid experience with GCP services including Vertex AI, Big Query, Pub/Sub, Cloud Storage, Cloud Functions, and Cloud Run.
- Familiarity with vector databases and retrieval-augmented generation (RAG) pipelines.
- Expertise in REST, GraphQL, microservices architecture, and API gateways.
- Proficient in Docker, Kubernetes (GKE preferred), and CI/CD pipelines using Cloud Build or equivalent.
- Strong communication skills and ability to engage with both technical and business stakeholders.
- Experience working with Agile methodologies and distributed delivery teams.
- GCP Certification (e.g., Professional Cloud Architect, Professional Data Engineer) is a strong plus.
- Experience in CI/CD implementation on Dev Ops platforms (e.g., Git Lab CI/CD, Cloud Build, Jenkins, or Git Hub Actions).
- Familiarity with multi-cloud deployments (AWS, Azure) in addition to GCP.
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