Jobs · Engineering

Gen AI Architect (AWS)

Quantiphi · United States · Yesterday
RemoteRemoteEngineeringFull-time
Quantiphi is an award-winning AI-first digital engineering company driven by the desire to solve transformational problems at the heart of business. Quantiphi solves the toughest and complex business problems by combining deep industry experience, disciplined cloud and data-engineering practices, and cutting-edge artificial intelligence research to achieve quantifiable business impact at unprecedented speed. We are passionate about our customers and obsessed with problem-solving to make products smarter, customer experiences frictionless, processes autonomous and businesses safer by detecting risks, threats and anomalies. Together with partners and customers, we embark on a data and AI led transformation journey that delivers impactful and measurable results. Role: Gen AI Architect (AWS)Experience Level: 8+ YearsWork location: Remote (US) Job Overview:We are looking for a Generative AI Architect / Lead to design and deliver enterprise-grade GenAI solutions using AWS Bedrock and Agentcore. This role focuses on building scalable applications leveraging large language models (LLMs), retrieval-augmented generation (RAG), and agentic AI workflows.The ideal candidate will be a hands-on architect who can define solution architecture, guide teams, and actively contribute to development while ensuring performance, scalability, and cost efficiency. What you will do:Design and implement GenAI solutions using AWS Bedrock and AgentcoreDefine architecture for LLM-based applications, including RAG pipelines and agentic workflowsDevelop and orchestrate agentic AI workflows, enabling multi-step reasoning, tool usage, and task automationBuild and manage RAG pipelines, including embeddings, retrieval mechanisms, and vector databasesIntegrate LLM capabilities into enterprise applications via APIs and backend servicesDesign and optimize prompt engineering strategies for accuracy, relevance, and performanceWork with structured and unstructured data sources to enable knowledge-driven AI applicationsEnsure model evaluation, monitoring, and optimization for latency, cost, and response qualityCollaborate with application, data, and platform teams for end-to-end solution deliveryDefine best practices for security, governance, and responsible AI usageTroubleshoot and resolve issues in production GenAI systemsProvide technical leadership and mentor team members while remaining hands-on Basic Qualifications (BQ):8+ years of relevant hands-on technical experience implementing, and developing cloud ML solutions on AWS.Hands-on experience on AWS services. Proven experience using AWS Sagemaker and Bedrock leveraging different types of data sources, Training jobs, real-time and batch applications.Design and implement agentic AI architectures using frameworks such as LangChain, Strand Agents etc., enabling autonomous task planning, decision-making, and multi-step reasoning.Hands-on experience with Amazon AgentCore for building, deploying, and scaling production-grade agentic AI applications, including agent memory management, tool registry, and observability.Architect and deploy scalable AI solutions on AWS, leveraging services like Lambda, Bedrock, Step Functions, S3, API Gateway, and SageMaker.Proficiency in working with LLM APIs (e.g., Claude, Nova, and other third-party LLM providers), including API integration,and multi-model orchestration strategies.Hands-on experience fine-tuning or optimizing large language models (LLM)Familiarity with LLM tool use, prompt templating and context management.Strong expertise in Vector Databases, including indexing strategies, embedding generation, similarity search, and integration with RAG architectures.Model Evaluation & Optimization: Evaluate LLM's zero-shot and few-shot capabilities, fine-tuning hyperparameters, ensuring task generalization, and exploring model interpretability for robust web app integration.Develop and maintain Model Context Protocol (MCP) implementations to manage state, context windows, memory, and prompt orchestration across distributed agent systems.Experience with at least one of the workflow orchestration tools, Airflow, StepFunctions, SageMaker Pipelines, Kubeflow etc.Experience implementing secure, scalable APIs and integrating with 3rd-party data sources and toolsAbility to collaborate with cross-functional teams such as Developers, QA, Project Managers, and other stakeholders to understand their requirements and implement solutions.Should have experience with Deep Learning Concepts - Transformers, BERT, Attention models, tokenization, embeddings. Nice to have:Experience with software development, exposure to frontend backend frameworks and communication protocolsExperience working on Infrastructure as Code (IaC) and CI/CD pipelinesExperience with NLP concepts: syntactic/semantic analysis, NER etc.

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