Posted 2 months ago
Senior Architect AI
AI Summary
Designs and oversees the end-to-end AI platform architecture for Liberty Global's telecommunications services, bridging technical excellence with business value across European markets.
About this role
Job Purpose
As Senior Architect AI, you will be accountable for designing and overseeing the end-to-end AI platform architecture that powers LibertyGlobal'stelecommunications services across our 85 million subscriberbase.You'llbridge technical excellence with business value, ensuring AI solutions integrate seamlessly with our telecommunications infrastructure while meeting operational, budget, and performance requirements. This role requires deep technicalexpertisecombined withstrong communicationskills to work effectively with both engineering teams and business stakeholders, translating complex technical concepts into actionable recommendations that drive business outcomes.
Key Responsibilities
End-to-End AI Architecture Design & Ownership
Design andmaintaincomprehensive AI platform architecture spanning data pipelines, model development, infrastructure, deployment frameworks, and integration withbothon Prem and cloud platforms and applications.
Own the technical vision for AI platform evolution, ensuring architecture supports current and future business requirements, context & process across customer experience,AI innovation, and operational efficiency use cases
Define architectural standards, design patterns, and technology selection criteria that enable scalable, reliable AI implementations across multiple European markets & ventures
Ensure architectural decisions consider operational requirements, budget constraints, and business priorities whilemaintainingtechnical excellence
Platform Integration & Technical Accountability
Take accountability for AI platform integration with LibertyGlobal'score telecommunications infrastructure & ventures, ensuring seamless data flow and system reliability
Design integration patterns and API strategies that connect AI services with existing platforms whilemaintainingsecurity, performance, and data quality standards
Collaborate with enterprise architects and engineering teams to ensure AI solutions align with overall technology architecture and infrastructure capabilities
Establish output goals, monitoring, observability, and quality assurance practices for AI platform components, ensuring operational stability and performance targets are met
Technical Guidance & Cross-Functional Collaboration
Provide technicalexpertiseand architectural guidance to engineering teams, data scientists, and product managers throughout the AI solution development lifecycle
Work closely with business stakeholders to understand requirements, translate them into technical architectures, and communicate trade-offs, timelines, and resource needs clearly
Review and approve technical designs, ensuring alignment with architectural standards and best practices while addressing scalability, security, and maintainability concerns
Collaborate with operations teams on deployment strategies, capacity planning, and cost optimization for AI infrastructure and cloud resources
Support comprehensive technical due diligence for potential acquisitions, investments, or partnerships
Operational Excellence & Budget Considerations
Contribute to budget planning and cost optimization discussions, providing recommendations on infrastructure investments, cloud resource allocation, and technology choices
Design architectures thatoptimizeoperational efficiency through automation, resourceutilization, and smart platform design while meeting performance requirements
Support capacity planning and infrastructure scaling decisions based on usage patterns, performance metrics, and business growth projections
Participate in vendor evaluations and technology assessments,providingtechnical recommendations that balance capability, cost, and operational impact
Define, refine & optimise processes, frameworks & context to ensure right business outcomes
Set Lifecycle management expectations and govern End of Existence models and components
Define andvalidatebusiness cases byestablishingclear metrics, measurable outcomes, and ROI, ensuring solutions deliver tangible customer value and product impact
Knowledgeand Experience
Essential:
8-10 years of experience in software architecture or technical lead roles with 4-5 years focused on AI/ML platforms and data-intensive systems
Proven experience designing end-to-end architectures or processes for AI/ML systems in production environments supporting large user bases
Understanding of IT platformsi,ecloud platforms (AWS, Azure, GCP), containerization (Kubernetes, Docker), andMLOpsframeworks and practices
Understanding of the use of Waterfall vs Agile practices including use of Kanban, SAFE, etc
Deep understanding of telecommunications systems and integration patterns with OSS/BSS, customer platforms, and network management systems
Demonstrated ability to work effectively with both technical teams and business stakeholders, translating between technical and business language
Proficiencyin AI/ML technologies including model training platforms, deployment frameworks, data pipelines, and monitoring tools
Experience with distributed systems design, API architecture, and microservices patterns for building scalable platforms
Strong knowledge of database technologies, data warehousing, streaming platforms (Kafka, Pulsar), and big data processing frameworks
Excellent communication and presentation skills for explaining complex technical concepts to non-technical audiences and business stakeholders including use of deep data analysis
Understanding of budget planning, cost modelling, and operational considerations for large-scale technology platforms & businesses
Ability to source, process, and analyse complex datasets to generate actionable insights that inform business and product decisions
Desirable:
Hands-on coding and prototyping experience in AI/ML development (Python, TensorFlow,PyTorch)
Experience with proof-of-concept development and technical validation of new AI technologies
Background in data science or machine learning engineering with an understanding of model development workflows
Practical experience with infrastructure-as-code and DevOps practices for AI platforms
Knowledge of data management
M&A due diligence
Preferred education/qualifications:
Experience in telecommunications, cable, or network infrastructure industries with understanding of subscriber analytics and operational systems
Bachelor's orMaster's degree in Computer Science, Engineering, Telecommunications, or related technical field
Background in hands-on development with Python, Java, or similar languages (nice to have but notrequiredfor day-to-day work)
Knowledge of AI ethics, responsible AI practices, and regulatory requirements relevant to European telecommunications markets or relevant knowledge gained from operations
Experience with architectural frameworks and documentation practices for enterprise-scale systems
Skills
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