Full-Time

Data Decisioning Manager

Data & AI

Accenture

Accenture

10,001+ employees

Global professional services and technology consulting

No salary listed

London, UK

In Person

The role may also be based in Manchester or other UK locations.

Bachelor's, Master's

Category
Engineering Management (1)
Required Skills
LLM
MLOps
Microsoft Azure
FastAPI
Python
Data Science
R
Git
SQL
Machine Learning
CRM
RAG
Microservices
AWS
LangGraph
REST APIs
LangChain
Data Governance
DevOps
Computer Vision
Databricks
Snowflake
Google Cloud Platform

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Requirements
  • Experience in a decisioning, data science, marketing technology, or customer analytics delivery role.
  • Hands-on experience designing and delivering next-best-action or next-best-offer solutions in a commercial environment.
  • Deep understanding of decision logic, including suppression, fatigue management, prioritisation, and arbitration.
  • Experience using one or more decisioning platforms, such as Pega Customer Decision Hub, Salesforce Marketing Cloud, Adobe Target, Adobe Experience Manager, Adobe Campaign, Braze, Iterable, or purpose-built solutions.
  • Strong working knowledge of predictive modelling for decisioning, including propensity, churn, customer lifetime value, uplift, and incrementality.
  • Experience designing statistically valid champion/challenger and multivariate tests and holdout methodologies.
  • Ability to critically evaluate model performance in a business context.
  • Experience designing measurement frameworks that prove genuine incremental value.
  • Proficiency in SQL and Python or R for data exploration, model validation, and decisioning diagnostics.
  • Hands-on automation experience with trigger-based journeys, event-driven architecture, and consent management.
  • Advanced Python, including object-oriented programming, asynchronous programming, packaging, testing, and production-grade coding.
  • Generative artificial intelligence and large language model development, including prompt engineering, fine-tuning, retrieval-augmented generation pipelines, and context-window management.
  • Experience with agentic artificial intelligence frameworks such as LangChain, LangGraph, or AutoGen, or similar frameworks, for building multi-step autonomous workflows.
  • Machine learning model development, training, evaluation, and deployment.
  • Application programming interfaces and backend development, including FastAPI, REST APIs, and microservices architecture.
  • Experience with vector databases and embeddings.
  • Experience deploying and managing artificial intelligence and machine-learning workloads at scale on Azure, Google Cloud Platform, or Amazon Web Services.
  • Version control and machine-learning operations, including Git, continuous integration and continuous delivery pipelines, model versioning, and production monitoring.
  • Demonstrated end-to-end delivery from problem definition through building, deployment, and iteration.
  • Strong production experience with generative artificial intelligence, beyond experimentation.
  • Hands-on experience with large language model tools such as Claude, GPT-4, or Gemini.
  • English fluency and the ability to work in global, cross-functional teams.
Responsibilities
  • Define strategic direction and design and optimise decisioning frameworks and automation solutions for major clients.
  • Design and implement next-best-action and next-best-offer decisioning frameworks, including eligibility rules, suppression logic, propensity-score integration, offer prioritisation, and arbitration.
  • Operationalise propensity models, uplift models, customer lifetime value scores, and churn predictions in live decisioning frameworks.
  • Use value-based decisioning logic that incorporates customer lifetime value and long-term customer value into prioritisation.
  • Define feature-engineering requirements, including signals, triggers, and contextual features that drive predictive power in decisioning.
  • Architect real-time decisioning solutions integrating customer relationship management, customer data platforms, and data platforms.
  • Advise on technology selection, including purpose-built versus platform solutions and capital expenditure versus operating expenditure considerations.
  • Design automated customer journeys across email, push, short message service, in-app, and web personalisation channels.
  • Design trigger-based, event-driven automation flows that respond to customer behaviour in real time.
  • Design integrations with marketing, commerce, and service platforms to connect model scores with actions.
  • Ensure automation is scalable, auditable, and aligned with consent and data-governance requirements.
  • Lead technical workstreams end to end, from design through live deployment, and own the outcome throughout.
  • Define data-input requirements and address data-quality issues before they become delivery problems.
  • Design end-to-end decisioning solutions.
  • Translate model outputs and complex logic into language that non-technical stakeholders can understand and trust.
  • Mentor junior team members and build decisioning capability across the practice.
  • Contribute to business development by shaping proposals and demonstrating technical credibility in client conversations.
  • Diagnose underperforming decisioning frameworks and drive practical solutions and iteration.
Desired Qualifications
  • Consulting or client-facing delivery experience.
  • Exposure to generative artificial intelligence applications in decisioning, including personalised content generation and artificial-intelligence-driven offer selection.
  • Experience evaluating purpose-built decisioning solutions and contributing to capital-expenditure and operating-expenditure business cases.
  • Familiarity with real-time streaming technologies in a decisioning context.
  • Awareness of data clean rooms and privacy-preserving analytics for audience targeting.
  • Experience with natural language processing, computer vision, or multimodal artificial-intelligence models.
  • Knowledge of artificial-intelligence safety, guardrails, and responsible artificial-intelligence practices in production.
  • Familiarity with Snowflake, Databricks, or similar data platforms.
  • Prior experience acting as an artificial-intelligence champion or innovator within a larger organisation.
  • A Bachelor's or Master's degree in Computer Science, Data Science, Engineering, or a related field.

Accenture is a global professional services firm that helps companies navigate technology-driven change. It offers strategies and services across consulting, digital, technology, and operations, with a strong emphasis on cloud, artificial intelligence, security, and enterprise reinvention. Accenture works by delivering end-to-end solutions, combining advisory work with implementation, technology platforms, and managed services to transform how organizations operate and compete in today’s digital world. The company differentiates itself through its long history as a dedicated tech-advisory arm that gained independence in 2001, its scale, and its active acquisitions—particularly since 2013—to expand capabilities in digital, cloud, and security. Its goal is to help the world’s largest corporations rethink and reshape their operations to stay ahead of rapid technological shifts.

Company Size

10,001+

Company Stage

IPO

Headquarters

Dublin, Ireland

Founded

1989

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Simplify Jobs

Simplify's Take

What believers are saying

  • Q3 FY26 revenue rose 6% to $18.7 billion, with a 17.0% operating margin.
  • Q1 FY26 advanced AI bookings hit $2.2 billion, nearly doubling year over year.
  • July 10, 2026, Accenture raised $5 billion in notes for acquisitions, buybacks, and working capital.

What critics are saying

  • June 18, 2026, Middle East conflict cut Q3 revenue by about $100 million.
  • Accenture trimmed FY26 local-currency growth to 3%-4%, signaling slower deal closures.
  • Federal and managed-services weakness makes AI displacement an existential margin risk.

What makes Accenture unique

  • July 7, 2026, Accenture Edge and Google Cloud launched prebuilt mid-market agentic AI.
  • June 2026, Accenture became OpenAI's first AI Transformation Partner of the Year.
  • July 2026 acquisitions of Dragos, runZero, and NetRise built a scaled xOT cybersecurity platform.

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Benefits

Health Insurance

Professional Development Budget

401(k) Retirement Plan

401(k) Company Match

Company News

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Jul 31st, 2026
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Accenture launched a dedicated mid-market business segment in June 2026, reporting a 13% net income margin for the quarter ended 31 May 2026. The global professional services company's revenue shows modest year-over-year growth, reaching $18.7 billion in Q2 2026. Microsoft restructured its senior leadership team in May 2026, adopting a flatter organisational framework for the artificial intelligence era. The company achieved a 40% net income margin for the quarter ended 30 June 2026, with revenue reaching $90 billion. Microsoft's quarter-over-quarter revenue increases significantly outpace Accenture's growth, driven by customer demand for AI offerings. Microsoft reported diluted earnings per share of $4.81 in its fiscal fourth quarter, up from $3.65 the previous year, demonstrating profitability alongside heavy AI infrastructure investment.

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Jul 30th, 2026
Accenture trades at 13.6x earnings after 35% stock drop despite strong 15.8% margins and $9B acquisition plans

Accenture trades at 13.6 times earnings after its stock fell 35% last year whilst the S&P 500 climbed, creating a steep discount to the market's 24.4 median multiple. The IT consulting firm maintains a 15.8% operating margin and generates a free cash flow yield of 11.9%, though three-year revenue growth of 4.8% trails the market median of 7.8%. The company disclosed a $100 million revenue impact from Middle East conflict and delayed managed services opportunities pushing into fiscal 2027. Management plans to deploy approximately $9 billion in acquisitions this year, including expansion into OT security. Accenture also launched Accenture Edge to target a $240 billion addressable market amongst mid-sized companies. The firm guided fourth-quarter revenue between $17.75 billion and $18.4 billion, with results expected to test whether current pressures represent temporary headwinds or fundamental business challenges.

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