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BT Group

Cloud Engineering Specialist

Location:  IND-Bengaluru-RMZ Ecoworld
Location flexibility:  3 office days / week
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Job Description

Job Req ID: 61685

Posting Date: 20 Aug 2026

Location: Bengaluru

Salary: Competitive

About the role

You will establish and drive the standards, frameworks, and best practices that underpin the Site Reliability Engineering (SRE) function. Working collaboratively across multiple technology teams and closely with the Service Assurance organization, you will ensure the consistent adoption of reliability, observability, and operational excellence disciplines while fostering a culture of continuous improvement and cross-functional collaboration. You will actively contribute to the design, development, and validation of Generative AI models within the AWS cloud environment, creating scalable baseline frameworks that support and accelerate Product Development Lifecycle (PDLC) optimization initiatives across the organization.
The role is responsible for ensuring the use of AI and big data to aggregate observational data (from monitoring systems output, job logs, syslog, etc.) and engagement data (from ticketing, incident, and event recording system data) to produce a virtuous circle of continuous insights yielding continuous improvements and fixes.
This role will lead the implementation of state-of-the-art AI and Generative AI techniques to unlock value from enterprise data, developing innovative approaches that improve operational efficiency and decision-making. Leveraging a combination of technical expertise, analytical judgment, and experimentation, the role will evaluate, select, and implement the most effective technologies, methodologies, and solutions to support business objectives and accelerate continuous improvement initiatives.

What you’ll be doing

  • Explore, understand, and implement the most recent machine learning algorithms and approaches for supervised and unsupervised machine learning and deep learning.
  • Develop and implement machine learning algorithms and models. (Regression, classification, clustering, etc).
  • Use AI and big data to identify opportunities and work with partner teams to optimise operations.
  • Design and optimise scalable AI pipelines for processing and analysing large-scale datasets on the AWS platform.
  • Conduct research to stay up to date with the latest advancements in AI.
  • Troubleshoot and optimise AI models and pipelines for performance and accuracy.
  • Identify and develop trusted adviser relationships with relevant stakeholders, management sponsors and senior executives.
  • Build and maintain trusted advisor relationships with key stakeholders, management sponsors, and senior executives, providing strategic guidance on AI-driven transformation, operational optimization, and technology innovation

Essential Skills / Experience

  • Proven hands-on experience in designing, developing, and deploying Machine Learning and Deep Learning solutions within enterprise environments.
  • Strong understanding of Generative AI technologies, Large Language Models (LLMs), Retrieval-Augmented Generation (RAG), and AI-powered automation frameworks.
  • Experience building and managing scalable platforms and data pipelines capable of processing and analyzing large volumes of structured and unstructured data.
  • Strong programming expertise in Python and/or Java, with experience developing production-grade AI and data-driven applications.
  • Demonstrated experience deploying and managing AI/ML solutions on AWS, including services such as SageMaker, Bedrock, Lambda, S3, EC2, EKS, and ECS.
  • Experience developing innovative solutions from concept through implementation, including architecture design, experimentation, deployment, and continuous optimization.
  • Strong understanding of DevOps principles, containerization technologies, and cloud-native architectures.
  • Ability to collaborate effectively with cross-functional teams and influence stakeholders at all levels while driving AI-led transformation initiatives.

Desirable Skills / Experience

  • Experience working with Agentic AI frameworks and multi-agent architectures.
  • Knowledge of Amazon SageMaker for machine learning model development, training, and deployment.
  • Experience implementing and managing CI/CD pipelines to support automated testing, deployment, and release processes.
  • Familiarity with Apache Airflow or similar workflow orchestration tools for managing data and AI pipelines.
  • Understanding of Quality Assurance (QA) methodologies, testing frameworks, and best practices for AI/ML solutions.
  • Exposure to MLOps practices, including model monitoring, versioning, and lifecycle management.
  • Experience with workflow automation, model operationalization, and production-scale AI deployments.
  • Knowledge of AI governance, model validation, and responsible AI practices.
  • Familiarity with Agile delivery methodologies and modern software engineering best practices.

BT is the UK’s leading communications group and the holding company behind some of the country’s most recognised brands – including BT, EE, Openreach and Plusnet. Our purpose is as simple as it is ambitious: we connect for good. Our customers include consumers, small, medium and large businesses, public sector organisations and other communications providers.

Having come through the most capital-intensive phase of our fibre investment, our focus now is on what comes next – simplifying how we operate, using technology and AI to work smarter, and organising ourselves to serve customers better and grow sustainably.

We have a singular culture that unites all our people: we are customer-first challengers, who are committed, clear and connected. These behaviours unite us as one team to deliver for our colleagues, our customers, our stakeholders and the country. Joining BT means working at the heart of a business that matters to the UK, with the opportunity to shape decisions, influence outcomes and help set the future course of one of the country’s most important companies.

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Working at BT Group

3 office days / week

A little flex time

Company benefits

25 (UK, increasing with service) / 21 (India) days annual leave + bank holidays
Adoption leave – 18 weeks full pay, 8 weeks half pay, 6 months statutory
Bank holiday swaps
Buy or sell annual leave – buy up to 5 days/year pro rata
Carer’s leave – Two weeks paid leave
Cinema discounts
Coaching
Compassionate leave
Complimentary Medical Services
Cycle to work scheme
Employee assistance programme
Employee discounts
Enhanced maternity leave – 18 weeks full pay, 8 weeks half pay, 6 months statutory
Enhanced paternity leave – 18 weeks full pay, 8 weeks half pay, 6 months statutory
Enhanced pension match/contribution
Enhanced sick pay – 3 months
Faith rooms
In house training
L&D budget – sponsored accreditation available for certain professions
Learning platform – internal and external learning content via Degreed
Learning license – unlimited access
Lunch and learns
Mental health platform access – Silvercloud
Mentoring
Neonatal leave
Open to job sharing
Open to part time work for some roles
Optional unpaid leave
Private GP service – 24/7 virtual GP access for UK colleagues
Referral bonus
Returnship
Salary sacrifice
Share options
Shared parental leave
Travel loan
Volunteer days – 3 volunteer days per year
Reservist leave
Fertility treatment leave
Pregnancy loss leave
Pregnancy support
Fertility treatment leave
Pregnancy loss leave
Pregnancy support
On-site catering
On-site barista
On-site shower
Modern office
Collaboration spaces
Private booths
On-site wellness room
Open to part-time employees
Open to compressed hours

Awards & Accreditations

2nd - Best Workplace Culture

2nd - Best Workplace Culture

Flexa awards 2026
3rd – Most loved - Large companies

3rd – Most loved - Large companies

Flexa awards 2026
Most Family Friendly Company

Top 10 - Most Family Friendly Company

Flexa awards 2025
Best Career Progression

Top 10 - Best Career Progression

Flexa awards 2025
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Flexa

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Company employees:

100,000 across BT Group (24,000 at BT Business)

Gender diversity (m:f):

74.3:25.7 (BT Group)

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