At a Glance
- Tasks: Transform cutting-edge AI prototypes into enterprise-ready products and services.
- Company: Join Accenture, a global leader in professional services with a focus on innovation.
- Benefits: Competitive salary, diverse projects, and opportunities for professional growth.
- Other info: Collaborative small team environment with direct access to decision-makers.
- Why this job: Make a real impact by building trusted solutions for major industries.
- Qualifications: Bachelor's degree in relevant fields and strong coding skills required.
The predicted salary is between 55000 - 65000 £ per year.
Location: London
Career Level: 9 Consultant
Accenture is a leading global professional services company providing a broad range of services in strategy and consulting, interactive, technology and operations, with digital capabilities across all services. QuantAI is building cutting‑edge AI‑native decision‑system assets for energy, commodities, financial, trading, and industrial operations. We are looking for engineers who can take strong quantitative and artificial intelligence (AI) work and turn it into enterprise‑safe products: interfaces, packaged desktop applications, APIs, services, workflow systems, and demos that are credible enough for pilots and durable enough for scaled delivery.
What you'd work on:
- Turn quantitative prototypes into reusable tools, services, packaged desktop applications, interfaces, and workflow products that can move from internal demo to client pilot to scaled offer.
- Ship across both cloud‑hosted services and locally distributed desktop applications, including Electron‑based apps when the workflow or client environment calls for it.
- Build enterprise hardening into the productization layer, including authentication, role‑based access control (RBAC), observability, security, release quality, cost controls, and deployment discipline.
- Build evaluation, regression, and release discipline into the productization layer so model logic and agent behavior remain measurable as systems change.
- Work closely with the quant lead so model logic, evaluation intent, and governance requirements survive the move into production.
- Make pragmatic architecture choices across large language models (LLMs), deterministic rules, and hybrid systems based on value, latency, cost, and reliability.
- Help shape repeatable build patterns so strong prototypes become faster, more reliable, and more reusable over time.
Platforms and interfaces:
- Own data flows, APIs, services, model‑serving surfaces, front‑end and desktop application surfaces, continuous integration and continuous delivery (CI/CD), and demo hardening.
- Build the systems that make quantitative work feel polished, reliable, and enterprise‑ready for expert users and client stakeholders.
Agent‑assisted systems:
- Own the agentic harness layer – evaluation frameworks, reviewer loops, control‑plane behavior, orchestration, and tool integration – that applications and MCPs wrap around.
- Design opinionated harnesses that expose through MCP or similar integration patterns without overfitting to one vendor or one moment in the tooling market.
Qualification:
Must‑have:
- Bachelor's degree in computer science, engineering, mathematics, physics, economics, or a related field. An associate degree is acceptable with at least 2 additional years of directly relevant experience and clear evidence of shipped engineering work.
- Minimum 3 years of experience in consulting or other client‑facing technical delivery roles, with evidence that you have helped move products, internal tools, or workflow systems beyond proof‑of‑concept stage.
- Minimum 3 years of hands‑on experience in one or more of the following areas: backend services, APIs and integrations, full‑stack delivery, data pipelines, model‑serving or machine learning workflows, or agentic orchestration systems.
- Strong coding ability in Python plus one complementary engineering surface such as TypeScript or JavaScript, front‑end delivery, cloud or platform engineering, or infrastructure automation.
- Sound engineering judgment around enterprise hardening and evaluation, including experience with several of the following: authentication, role‑based access control (RBAC), observability, security, release discipline, regression testing, or experiment frameworks for AI, machine learning, or agentic workflows.
Nice‑to‑have:
- Experience with tool‑using systems, retrieval, evaluation pipelines, agent orchestration, or MCP‑style integrations.
- Experience building expert‑facing interfaces, workflow products, or technical demos that had to stand up in front of real users.
- Experience packaging desktop applications or supporting Windows‑heavy enterprise environments.
- Exposure to forecasting, anomaly detection, optimization, time‑series systems, or other decision‑support workflows.
- Experience in energy, commodities, financial, trading, market operations, or industrial workflows.
Team and environment:
QuantAI sits between quantitative research, agentic engineering, and product delivery inside Accenture. The team is small, hands‑on, and built for people who want visible ownership and the chance to build something lasting. The goal is not one‑off demos or deckware. The goal is reusable assets clients can trust, buy, and scale. Different strengths can thrive here, but on a team this size everyone works across both engineering surfaces. We care more about demonstrated depth in one area plus real fluency in the other than about a shallow checklist match across everything. You should expect direct technical feedback, growing scope, and close collaboration with quants and practice leadership. This is a small‑team build environment with real route‑to‑market access in energy, commodities, financial, trading, and industrial decision systems. The work needs to stand up in front of business decision makers and operators, not just engineers.
Locations: London
Global S&C_ATIOS_Strategy Consultant employer: WeAreTechWomen
Accenture is an exceptional employer, offering a dynamic work culture that fosters innovation and collaboration in the heart of London. With a strong focus on employee growth, team members are encouraged to take ownership of their projects while benefiting from direct technical feedback and opportunities to work closely with industry leaders. The unique blend of cutting-edge technology and real-world applications ensures that employees are not only building impactful solutions but also advancing their careers in a supportive environment.
StudySmarter Expert Advice🤫
We think this is how you could land Global S&C_ATIOS_Strategy Consultant
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We think you need these skills to ace Global S&C_ATIOS_Strategy Consultant
Some tips for your application 🫡
Tailor Your Application:Make sure to customise your CV and cover letter for the Strategy Consultant role. Highlight your relevant experience in consulting, technical delivery, and any specific projects that align with what we do at StudySmarter.
Showcase Your Skills:Don’t just list your skills; demonstrate them! Use examples from your past work to show how you've successfully turned prototypes into enterprise-ready products. We love seeing real-world applications of your expertise.
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How to prepare for a job interview at WeAreTechWomen
✨Know Your Stuff
Make sure you brush up on your technical skills, especially in Python and any complementary languages like TypeScript or JavaScript. Be ready to discuss your past projects and how you've turned prototypes into enterprise-ready products.
✨Understand the Role
Familiarise yourself with the specifics of the Strategy Consultant role at Accenture. Understand the importance of enterprise hardening and be prepared to talk about how you've implemented security measures and evaluation frameworks in your previous work.
✨Showcase Your Collaboration Skills
This role involves working closely with quants and practice leadership. Be ready to share examples of how you've collaborated in small teams, particularly in client-facing situations, and how you’ve contributed to building reusable assets.
✨Prepare for Technical Questions
Expect to face technical questions that assess your engineering judgment and problem-solving abilities. Think about scenarios where you've made pragmatic architecture choices and be prepared to explain your thought process clearly.