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Senior AI Cloud Engineer AWS & Generative AI

Senior AI Cloud Engineer AWS & Generative AI

zorba ai
Early Applicant
  • Posted 14 hours ago
  • Be among the first 10 applicants

Job Description

We are looking for a highly skilled Senior AI Cloud Engineer with strong expertise in AWS, Amazon Bedrock, Python, and Generative AI. The role will focus on designing, deploying, monitoring, and optimizing AI infrastructure and AWS Bedrock Agents. The ideal candidate should have strong experience in AI agent orchestration, observability, automation, LLM cost monitoring, and AWS cloud services.

Key Responsibilities

  • Design and deploy AI agents using AWS Agents for Amazon Bedrock for complex business workflows.
  • Develop and maintain Python-based automation for data processing, API integrations, agent workflows, and cloud operations.
  • Build end-to-end logging, monitoring, and observability pipelines for AI/LLM workloads.
  • Analyze application and MuleSoft logs and integrate them with AWS monitoring and alerting solutions.
  • Implement alerts using Amazon CloudWatch, SNS, Lambda, EventBridge, and other AWS services based on operational requirements.
  • Monitor AWS Bedrock and LLM usage, billing, token consumption, and cost metrics.
  • Identify opportunities to optimize LLM usage and reduce unnecessary cloud/AI costs.
  • Work with different LLM models and understand their tokenization, pricing, context limits, and performance characteristics.
  • Develop production-grade solutions for Generative AI and cloud infrastructure.
  • Troubleshoot production issues across AI agents, APIs, logs, integrations, and AWS services.
  • Collaborate with engineering and business teams to deliver reliable and scalable GenAI solutions.

Must-Have Skills

  • AWS Bedrock – Mandatory
  • Hands-on experience with AWS Bedrock Agents / Agent Core concepts
  • Strong Python programming and automation skills
  • Experience with Generative AI / LLMs
  • Strong knowledge of AWS Cloud services
  • Experience with CloudWatch, Lambda, SNS, EventBridge and alerting mechanisms
  • Strong understanding of logging, monitoring, and observability
  • Knowledge of LLM tokenization, prompt engineering, model usage, and cost optimization
  • Experience with API integrations and data processing
  • Strong troubleshooting and production support experience

Good-to-Have Skills

  • MuleSoft / MuleSoft log analysis
  • Amazon Managed Grafana
  • AWS Cost Explorer / AWS Billing and FinOps
  • Experience building AI/LLM usage dashboards
  • Experience with Bedrock Knowledge Bases and RAG
  • Experience with REST APIs and middleware integrations
  • Infrastructure automation / IaC

Skills: aws,automation,python,bedrock

More Info

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Industry:
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Key Skills

AWS Cloud services

Generative AI

AWS Bedrock

EventBridge

API integrations

observability

About Company

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Pune, India
Skills:
Lambda, Sns, Python, Logging, Cloudwatch, Rest Apis, MuleSoft log analysis, AWS Bedrock, Amazon Managed Grafana, EventBridge, Troubleshooting, IaC, Middleware integrations, Production Support, API integrations, Observability, Monitoring, Bedrock Knowledge Bases, Generative AI, AWS Cloud services, LLMs, AWS Cost Explorer, Infrastructure automation, Data Processing, AWS Billing and FinOps, RAG, AI LLM usage dashboards, AWS Bedrock Agents