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معماري أنظمة AI - LLM وبنية المتجهات

ستار

تقديم سريع
الموقع
Riyadh, SA
نمط العمل
حضوري
المستوى
متوسط
المجال الوظيفي
بيانات · DevOps
تاريخ النشر
٨ يوليو ٢٠٢٦

وصف الوظيفة

الوصف متوفر بالإنجليزية من موقع الشركة — الترجمة العربية تُضاف تلقائيًا قريبًا

We are seeking a senior AI Systems Architect to design and implement AI-native application cores where Large Language Models (LLMs), vector databases, retrieval systems, and agent frameworks form the primary computational layer of our web and mobile applications.
This role is responsible for architecting scalable AI pipelines, retrieval-augmented generation (RAG) systems, memory architectures, AI agents, and orchestration workflows integrated with our development stack (Web, Mobile, n8n automation, and AI services).
The ideal candidate understands that AI is not a feature, it is the operating system of the product.
Key Responsibilities

  1. AI Core Architecture Design
    Design AI-first system architecture for web and mobile applications
    Architect RAG pipelines using vector databases
    Define long-term memory, short-term memory, and contextual state systems
    Implement multi-agent AI systems
    Design AI orchestration layers
  2. Vector Database & Embedding Systems
    Select and implement vector databases such as:
    Pinecone
    Weaviate
    Qdrant
    Milvus
    Supabase (pgvector)
    Optimize embedding strategies
    Implement hybrid search (semantic + keyword)
    Design scalable indexing pipelines
  3. LLM Integration & Optimization
    Work with models such as:
    OpenAI APIs
    Anthropic
    Meta (LLaMA)
    DeepSeek
    Alibaba (Qwen)
    Implement structured output pipelines
    Design evaluation and prompt testing frameworks
    Optimize cost-performance ratio
  4. AI Agent Systems & Orchestration
    Build autonomous AI agents
    Design tool-calling systems
    Integrate with:
    n8n
    LangGraph / LangChain style agent flows
    Implement memory-aware agents
  5. Production AI Engineering
    Build monitoring systems for hallucination detection
    Design guardrails and validation layers
    Implement evaluation datasets and benchmarking
    Ensure security of AI pipelines
    Build scalable infrastructure (Docker, Kubernetes, GPU optimization)
    Technical Expertise
    5+ years software engineering experience
    2+ years building production AI systems
    Deep knowledge of:
    Vector embeddings & similarity search
    RAG architectures
    Tokenization and context window optimization
    Fine-tuning & LoRA concepts
    Prompt evaluation frameworks
    Experience with Python (mandatory)
    Experience with FastAPI / backend services
    Experience designing scalable APIs
    Architecture Experience
    Designing distributed systems
    Microservices & event-driven architecture
    Experience with PostgreSQL + pgvector
    Experience deploying LLM systems in production

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