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Senior AI Native Backend Engineer

Senior AI Native Backend Engineer

Sequoia
Early Applicant
  • Posted 18 hours ago
  • Be among the first 10 applicants

Job Description

The core responsibilities for the job include the following:

Backend Engineering and Architecture:

  • Design and implement low-latency, high-availability, and performant backend services and APIs that power AI-enabled products.
  • Be the architect for your module; own the design, scalability, and reliability of backend systems end to end.
  • Write reusable, testable, and efficient code; enforce engineering best practices across the team.
  • Integrate user-facing elements developed by front-end developers with robust server-side logic and AI-powered workflows.
  • Implement security, data protection, and compliance standards across all backend services.
  • Integrate multiple data sources, databases, and third-party systems into unified, scalable backend architectures.

AI-Native Development:

  • Build, maintain, and optimise AI-native backend applications leveraging Large Language Models (LLMs), Retrieval-Augmented Generation (RAG), AI agents, orchestration frameworks, and modern AI platforms.
  • Design and implement robust data pipelines, vector databases, embedding strategies, knowledge retrieval systems, and model evaluation frameworks.
  • Develop scalable backend workflows and integrations that automate business processes and deliver measurable AI-driven value.
  • Implement observability, monitoring, prompt management, testing pipelines, and guardrails to ensure AI system quality, reliability, and compliance.
  • Optimise AI application performance, latency, scalability, and cost efficiency across cloud environments.
  • Evaluate, experiment with, and integrate new AI models, tools, and frameworks to continuously enhance product capabilities.

Requirements:

  • 7+ years of experience in backend software engineering, with a strong focus on microservices design and implementation.
  • Hands-on experience building AI/ML or generative AI applications using technologies such as OpenAI, Anthropic, Gemini, Azure AI, LangChain, LlamaIndex, CrewAI, AutoGen, or similar frameworks.
  • Strong proficiency in Python (mandatory); familiarity with TypeScript, Java, or Go is a plus.
  • Experience implementing RAG architectures, vector databases, embeddings, semantic search, prompt engineering, and AI evaluation frameworks.
  • Deep understanding of Large Language Models (LLMs), AI agents, model orchestration, and modern AI development practices.
  • Solid understanding of software architecture, APIs, microservices, distributed systems, and system integrations.
  • Strong grasp of algorithms, problem-solving, and fundamental design principles behind scalable applications.
  • Experience working with AWS, Azure, or GCP and deploying AI workloads in production environments.

More Info

Key Skills

LangChain

CrewAI

embeddings

AI evaluation frameworks

vector databases

Anthropic

model orchestration

prompt engineering

AutoGen

AI agents

Azure AI

OpenAI

LlamaIndex

RAG architectures

About Company

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