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BlackRock

Director, Agentic AI, Data Science Lead, AI Labs

Edinburgh
Posted about 18 hours ago
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About this role

AI Labs Overview

For more than three decades, BlackRock has combined world-class talent and technology to redefine what's possible in asset management. Today, AI is reshaping every aspect of our industry, from investments and client experiences to operations, risk management, and product innovation. BlackRock AI Labs sits at the center of that transformation.

AI Labs is BlackRock's advanced AI science and engineering organization. We partner with teams across the firm to solve some of the most complex and consequential challenges in financial services, applying generative AI, machine learning, optimization, and statistics to deliver measurable business impact. Our mission is simple but ambitious: combine human and machine intelligence to revolutionize asset management.

What sets AI Labs apart is our ability to move from idea to impact. We are not a research lab detached from the business, nor are we a traditional software engineering organization. We are a hybrid team of scientists and engineers who build solutions that run at scale in production environments and create capacity for our business partners. From AI-powered investment insights and risk management solutions to next-generation agentic workflows - our work is helping to shape the future of BlackRock.

Our teams work on some of the firm's highest priority strategic initiatives, including large-scale generative AI systems, intelligent agents, predictive analytics, optimization engines, operational risk solutions, and AI platforms that accelerate innovation across BlackRock. We help define best practices, establish technical standards, and enable teams throughout the organization to adopt AI safely, effectively, and at scale.

AI Labs has offices in New York, Edinburgh, Atlanta, San Francisco, and Seattle.

We are looking for candidates with unique backgrounds and diverse skill sets with fresh perspectives to accelerate and amplify our efforts to make an impact at BlackRock.

Job Description

As a Data Science Director, you will take end-to-end ownership of flagship AI Labs initiatives - from initial scoping and stakeholder alignment, through research, prototyping, and technical build-out, to testing, iteration, and production deployment. You will partner directly with business and technology stakeholders to translate ambiguous problems into well-scoped programs of work, own the solutions architecture, and ensure delivery is reliable and at scale. Alongside this technical and delivery accountability, you will manage and mentor more junior AI scientists, helping to grow their skills, guide their career development, and build a strong bench of talent within AI Labs. This role reports to the Head of Science in AI Labs and manages a team of 3-6 AI scientists.

Responsibilities

  • Own flagship AI Labs initiatives end-to-end: scoping, stakeholder alignment, research, prototyping, build, and production deployment.
  • Partner with senior business and technology stakeholders to turn ambiguous problems into scoped programs with agreed priorities and success criteria.
  • Lead the design, build, and evaluation of AI agents and agentic workflows - tool use, memory, multi-step reasoning - on large, complex datasets, iterating as findings emerge.
  • Partner with engineering to make solutions production-grade and compliant, with observability, guardrails, and evaluation pipelines in place.
  • Manage and mentor AI scientists, guiding technical approach and career growth to build the bench in AI Labs.
  • Communicate technical work and outcomes to senior leaders and general audiences, including white papers, publications, and presentations.

Reasons to use Rodeo

I’m in my final year doing Economics and I don’t know whether to apply for grad schemes now or do a masters first. What do you think?

Honest answer — it depends on where you want to end up. A lot of top grad schemes (Big 4, civil service, banking) don’t need a masters. Let’s look at the ones you’d be competitive for now, and we can decide if a masters actually adds anything.

Also worth knowing: most autumn 2026 applications are open now. Timing matters more than you think.

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Graduate Consultant — 2026 Scheme

PwC·London, UK
£35,000/yr

Why you're a good match

Strong

Your economics background and your summer at a regional bank line up with what PwC looks for on the consulting scheme. Applications close in four weeks.

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Why you're a good match

You’ve got the grades and the economics background, and your bank internship is exactly the experience this scheme looks for. Apply soon — deadlines close within the month.

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Experience fit

Your summer at the bank plus your econometrics coursework map directly to the day-one responsibilities on this scheme — client modelling, market briefings, and deal support.

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Qualifications

Required experience

  • PhD in a quantitative field (machine learning, AI, statistics, computer science, physics, engineering) with 8+ years of professional experience OR
  • MS degree in a quantitative field plus 11+ years of professional experience in machine learning, artificial intelligence, or other aspects of the AI / data science and agent development process.
  • Track record of leading complex, ambiguous technical initiatives end-to-end, from scoping through production, and delivering measurable business impact.
  • Experience managing or mentoring AI scientists or similar technical talent, including supporting their career growth and development.
  • Strong familiarity with Python programming, and hands-on experience guiding solutions architecture for production-grade AI/ML systems.
  • Strong theoretical background in and practical experience using AI, machine learning, optimization, or statistical techniques.
  • Experience assessing performance of machine learning methods and agentic systems: benchmark construction, metric design, and statistically sound measurement of quality, safety, and reliability.

Additional experience we value

  • Depth in one or more research areas relevant to our work, e.g. LLM reasoning, reinforcement learning, machine learning, statistical modeling, or quantitative optimization.
  • Academic publications, preprints, or open-source contributions.
  • Experience building and deploying AI agents and agentic workflows using open-source frameworks (e.g. LangGraph, Pydantic AI, OpenAI Agents SDK), agent platforms (e.g. Amazon Bedrock, Microsoft Agent Framework, Claude Agent SDK), or comparable tools, including standards such as Model Context Protocol (MCP) for connecting agents to tools and data.
  • Experience with retrieval systems for agents: retrieval-augmented generation, embedding models, vector databases, and long-term memory.
  • Experience with machine learning libraries (e.g. PyTorch, Tensorflow), cloud platforms (AWS, Azure, GCP), and the analysis of financial or economic data.
  • Experience helping define technical standards, best practices, or ways of working adopted across multiple teams, and exposure to financial services or another regulated environment.

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Our benefits

To help you stay energized, engaged, and inspired, we offer a wide range of employee benefits including: retirement investment and tools designed to help you in building a sound financial future; access to education reimbursement; comprehensive resources to support your physical health and emotional well-being; family support programs; and Flexible Time Off (FTO) so you can relax, recharge, and be there for the people you care about.

Our hybrid work model

BlackRock’s hybrid work model is designed to enable a culture of collaboration and apprenticeship that enriches the experience of our employees, while supporting flexibility for all. Employees are currently required to work at least 4 days in the office per week, with the flexibility to work from home 1 day a week. Some business groups may require more time in the office due to their roles and responsibilities. We remain focused on increasing the impactful moments that arise when we work together in person – aligned with our commitment to performance and innovation. As a new joiner, you can count on this hybrid model to accelerate your learning and onboarding experience here at BlackRock.

Guidance on AI use for candidates

At BlackRock, AI has long been part of how we work – enhancing decision-making, improving operations, and helping us deliver better outcomes for clients. We encourage candidates to use AI thoughtfully to learn, prepare, and work more effectively; but during our interview process, we want to focus on getting to know you through your own experiences, thinking, and judgment. To support you, we’ve provided guidance on when and how to use AI during our hiring process so you can approach each step with confidence and showcase your best self.

About BlackRock

At BlackRock, we are all connected by one mission: to help more and more people experience financial well-being. Our clients, and the people they serve, are saving for retirement, paying for their children’s educations, buying homes, and starting businesses. Their investments also help to strengthen the global economy: support businesses small and large; finance infrastructure projects that connect and power cities; and facilitate innovations that drive progress.

This mission would not be possible without our smartest investment – the one we make in our employees. It’s why we’re dedicated to creating an environment where our colleagues feel welcomed, valued, and supported with networks, benefits, and development opportunities to help them thrive.

To learn more about BlackRock, please visit Careers.BlackRock.com. We also encourage you to get to know us on LinkedIn, Instagram, YouTube, X, and TikTok.

BlackRock is proud to be an Equal Opportunity Employer. We evaluate qualified applicants without regard to age, disability, race, religion, sex, sexual orientation, and other protected characteristics at law.

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Skills

Agentic AI
Data Science
Machine Learning
Generative AI
Python
Solutions Architecture
Leadership
Mentorship
Statistical Modeling
Optimization
LLM Reasoning
Reinforcement Learning
PyTorch
Tensorflow
Cloud Platforms
Financial Services

Location

Edinburgh, Scotland, United Kingdom

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