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AI Large Language Model Technology Architect

Job

  • Level
    Lead
  • Location
    Vienna
  • Working Model
    Onsite
  • Job Field
    Data, Application
  • Employment Type
    Full Time
  • Contract Type
    Permanent employment
  • Salary
    from 53.600 € gross/year

Job Summary

In this role, you design and develop advanced AI systems, working closely with agile teams and leveraging your expertise in AI architectures and the integration of LLMs and generative AI.

Job Technologies

Your role in the team

  • As a hands-on AI/LLM Architect, you will be at the heart of designing and building advanced AI systems that power the modern enterprise. This is a deeply technical, hands-on role - you will spend the majority of your time in the architecture and engineering of real-world AI solutions across classical machine learning, generative AI, and agentic systems, delivering these within active client engagements.
  • You will translate requirements into concrete architecture decisions: selecting design patterns, evaluating and benchmarking technical frameworks, assembling reusable components, and making deliberate technology choices that balance innovation with enterprise-grade reliability.
  • You will design and build AI agent architectures - including multi-agent orchestration, tool use, skills use, and memory systems - and work hands-on with foundation models through fine-tuning, retrieval-augmented generation (RAG), and custom model integration.
  • A part of your work will also involve engineering the AI context layer that makes these systems intelligent in practice - connecting enterprise knowledge bases, structured and unstructured data sources, and domain-specific content so that AI outputs are grounded, accurate, and relevant to the client's business.
  • You will design and validate systems against enterprise non-functional requirements across security, observability, governance, performance, and scalability.
  • A core output of this role is the production of tangible engineering and architecture deliverables. This means writing and owning software components - building, integrating, and testing AI system modules as a practitioner - alongside producing detailed architecture artifacts including architecture decision records (ADRs), component diagrams, data flow diagrams, and integration specifications that guide and enable broader engineering teams.
  • You will work with cross-functional delivery teams alongside data engineers, ML engineers, and application developers, and this role is an opportunity to develop deep expertise across the full AI architecture stack, sharpen your engineering instincts on complex, real-world problems, and build a foundation for growing into a lead or principal architect over time.
  • Independently design, build, and deliver software components across the AI architecture - owning them end to end from design through implementation, integration, and testing as a hands-on practitioner.
  • Design and build AI agent architectures - including individual agents, their prompts, tools, and skills, multi-agent orchestration, and memory systems - making deliberate design pattern and technology choices.
  • Design and implement agent orchestration patterns that handle task handoffs, communication, state management, and error recovery, validating them through hands-on prototyping.
  • Evaluate multiple design options and technical approaches, making deliberate, justified design choices that balance capability, cost efficiency, performance, and enterprise-grade reliability.
  • Design, build, and run evaluation strategies and harnesses that measure agent and system quality on metrics such as accuracy, relevance, and faithfulness, translating findings into design improvements.
  • Architect and implement foundation model integrations - selecting the right models, invocation patterns, and customization approaches (fine-tuning, RAG, custom integration) based on capability, cost, and performance trade-offs.
  • Design and build model adaptation and fine-tuning pipelines, applying working knowledge of transformer-based architectures to inform model selection and optimization.
  • Design and build the AI context layer - including context graph design and ingestion pipelines that parse, chunk, enrich, and index structured and unstructured enterprise content, and the retrieval components that ground AI outputs in the client's knowledge.
  • Build embedding, vector storage, and retrieval (semantic, hybrid, reranking) into end-to-end RAG pipelines, applying integration patterns that connect to enterprise data sources.
  • Design and implement context assembly and memory components that manage prompts, context windows, and conversational state for grounded, accurate outputs.
  • Identify, design, and build reusable components and solution patterns that accelerate delivery and can be templated across engagements.
  • Design for cost efficiency and performance - optimizing model usage, inference patterns, caching, and resource utilization to meet target latency, throughput, and cost objectives.
  • Design, build, and validate systems against enterprise non-functional requirements - implementing guardrails, prompt-injection defenses, PII handling, and access controls for security and Responsible AI.
  • Build governance controls including versioning, audit logging, and lineage tracking, and produce the model documentation that keeps systems auditable.
  • Build observability into systems - logging, tracing, monitoring, alerting, and cost tracking - to ensure AI solutions remain healthy, performant, and scalable in production.
  • Produce detailed architecture artifacts - including architecture decision records (ADRs), architecture blueprints, design documents, agent orchestration and integration pattern specifications, component and data flow diagrams - that guide and enable broader engineering teams.
  • Continuously learn, evaluate, and apply new design patterns, frameworks, and technologies across the fast-evolving AI landscape, balancing innovation with enterprise-grade reliability.
  • Collaborate with cross-functional delivery teams - data engineers, ML engineers, and application developers - to translate requirements into concrete architecture decisions that meet stakeholder needs.

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Our expectations of you

Education

  • Bachelor's Degree or equivalent.

Qualifications

  • Well versed in coding using Python.
  • Solid foundation in architecting and operationalizing LLM driven application architecture patterns.

Experience

  • Proven experience in designing & deploying enterprise-grade advanced AI solutions using agentic, generative, and classical AI/ML with at least one cloud vendor.
  • Practical experience in the Agentic, LLM and Generative AI space.
  • Professional working experience in coding engineering, machine learning, deep learning and NLP solutions and applications.
  • Several years of hands-on experience as a machine learning architect in the industry designing big data, machine learning, and large-scale analytical engineering solutions.

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What we offer

  • Work on cutting-edge AI, Generative AI, and Agentic AI programmes for leading global organisations.
  • Access to continuous learning, certifications, and dedicated development opportunities across cloud, AI, and architecture disciplines.
  • Flexible working models and a modern work environment that supports your personal and professional growth.
  • In addition to exciting projects, we offer an attractive compensation package, flexible working hours, a modern environment, and many additional benefits.
  • You also have the opportunity to positively influence your annual income based on your individual performance.
  • The annual gross salary for this position starts, depending on qualifications and experience, at €53,600.

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Benefits

Health, Fitness & Fun

Higher Take-Home Pay

Work-Life-Integration

Topics You Will Work On

Job Locations

  • Location Vienna

    Austria

About Your Employer

Accenture GmbH

Accenture GmbH

Wien, Linz

Accenture is one of the world's leading professional services firms, renowned for its consulting and outsourcing services with a focus on Strategy, Digital, Technology and Operations.

Description

  • Founding Year
    1993
  • Company Type
    Established Company
  • Working Model
    Full Remote, Hybrid, Onsite
  • Industry
    Consulting, Internet, IT, Telecommunication

Employer reviews

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Total

(3 Reviews)
3.8
  • Career Growth

    3.8
  • Engineering

    3.0
  • Workingconditions

    4.3
  • Culture

    3.9
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Logo Accenture GmbH

AI Large Language Model Technology Architect

Salary
from 53.600 € gross/yearEstimated net salary based on the gross salary in the job ad.from 37.693 € net/year
Location
Vienna
Working Model
Onsite
Diversity
Open for all genders
English Only
English only required

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