4th Data Science & AI Summit 2026 - London

📅 01 Oct – 02 Oct 2026 📍 Radisson Blu Hotel, London Canary Wharf, London, United Kingdom 🏢 0 exhibitors 👥 0 attendees

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About this event

4th Data Science & AI Summit 2026 - London

The 4th Data Science & AI Summit 2026 in London brings together global leaders, innovators, and practitioners at the forefront of artificial intelligence and data science. This two-day conference, held on October 14-15, 2026, at the London Convention Centre, will explore cutting-edge advancements, real-world applications, and future trends shaping industries worldwide. Whether you're a data scientist, AI engineer, business leader, or tech enthusiast, this event offers unparalleled insights and networking opportunities to drive innovation and growth.

Key Focus Areas

  • Artificial Intelligence & Machine Learning Innovations
  • Big Data Analytics and Business Intelligence
  • AI Ethics, Governance, and Responsible AI Practices
  • Industry Applications: Healthcare, Finance, Retail, and Manufacturing
  • Emerging Technologies: Generative AI, Quantum Computing, and Edge AI

Who Should Attend

  • Data Scientists and Analysts
  • AI and Machine Learning Engineers
  • Chief Technology Officers (CTOs) and IT Leaders
  • Business Decision-Makers and Innovation Heads
  • Academics and Researchers
  • Startup Founders and Tech Entrepreneurs

Why Attend?

  • Learn from 100+ expert speakers sharing actionable insights.
  • Network with 5,000+ professionals from 40+ countries.
  • Explore 50+ exhibitors showcasing the latest tools and platforms.
  • Participate in hands-on workshops and interactive sessions.
  • Discover investment and collaboration opportunities.

Event Details

Date: October 14-15, 2026
Venue: London Convention Centre, 100 Exhibition Way, London, UK
Registration: Register Now
Contact: info@dsa-summit.com | +44 20 7946 0000

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Join the global conversation and shape the future of data science and AI. Limited early-bird tickets available!

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Venue Location

Data sheet

4th Data Science & AI Summit 2026 - London – Event Attendee & Buyer Profile Analysis
Event date: 01 Oct 2026 - 02 Oct 2026
Location: Radisson Blu Hotel, London Canary Wharf, London, United Kingdom
Event status: Upcoming
Research date: 30 Jun 2026
Event Overview
Event Name 4th Data Science & AI Summit 2026 - London
Event Date 01 Oct 2026 - 02 Oct 2026 (user-supplied known details)
Event Status Upcoming
Venue Radisson Blu Hotel, London Canary Wharf
City London
State / Region England
Country United Kingdom
Organizer Organizer not publicly verified in the supplied materials.
Official Event Website Official current-year event page not supplied for verification.
Event Type B2B conference / summit
Primary Category IT & Technology
Secondary Applicable Categories Science & Research; Business Services
Audience Reach Likely international business and technical audience, subject to official confirmation.
Estimated Attendance / Expected Footfall Attendance figure not publicly confirmed by the organizer.
Attendance Data Reliability Low to Medium. User-supplied event brief references promotional scale claims, but it also conflicts with the supplied date and venue details.
Main Purpose of Event To connect AI, machine learning, analytics, and enterprise innovation stakeholders around applied data science use cases, tools, strategy, partnerships, and solution sourcing.
About the Event

The 4th Data Science & AI Summit 2026 - London appears positioned as a specialist B2B technology summit focused on artificial intelligence, machine learning, data engineering, analytics, governance, and enterprise use cases. Based on the supplied event description, the summit is intended to bring together technical practitioners, digital transformation leaders, research stakeholders, startup founders, and solution providers operating across AI-led business initiatives.

From a commercial perspective, this event matters because it sits at the intersection of technology adoption and executive decision-making. Likely participant groups include enterprise IT leaders, data science teams, AI product owners, innovation departments, consultancies, cloud and platform buyers, and research or academic participants. That mix makes the summit potentially relevant for lead generation, strategic partnerships, enterprise software outreach, thought-leadership positioning, and high-value B2B targeting. However, current-year attendance, sponsor, exhibitor, and speaker lists should be officially verified before any event-list sales claim is made.

1. Who Attends: Buyers / Attendees
Buyer / Attendee Segment Typical Organizations Buying Role or Influence Relevance to Exhibitors / Suppliers
Chief technology and digital leaders Large enterprises, banks, insurers, retailers, telecoms, public-sector bodies Budget owners for AI strategy, transformation, platform selection High-value targets for AI software, infrastructure, consulting, and managed services
Data science and machine learning teams Enterprise analytics groups, AI labs, product teams, digital units Technical evaluators, solution champions, pilot sponsors Relevant for MLOps, data platforms, model monitoring, notebooks, and tooling
Data engineering and analytics leaders Cloud-first firms, digital-native companies, regulated enterprises Influence architecture, integration, governance, and vendor selection Strong fit for warehousing, ETL, lakehouse, observability, and BI vendors
AI product managers and innovation heads Software firms, digital transformation teams, R&D functions Define use cases, prioritize pilots, evaluate partnerships Good targets for applied AI tools, data partnerships, and integration services
Cybersecurity, governance, and risk leaders Banks, healthcare groups, government-related entities, critical infrastructure firms Review compliance, responsible AI, data access, and model risk Relevant for privacy, governance, AI assurance, and security vendors
Procurement and strategic sourcing teams Enterprise procurement departments, public-sector procurement teams Commercial gatekeepers for software, cloud, and consulting purchases Important for enterprise contract qualification and supplier onboarding
Consultants, systems integrators, and implementation partners Management consultancies, digital agencies, cloud integrators Channel partners, specifiers, and multipliers of vendor solutions High relevance for co-selling, referral, and implementation alliances
Startups, founders, and venture ecosystem participants AI startups, incubators, investors, accelerators Early-stage buyers, technology adopters, partnership seekers Relevant for developer tools, cloud credits, hiring, and technical services
Academic and research stakeholders Universities, labs, institutes, applied research centers Influence research partnerships and talent pipelines Useful for collaboration, grants, innovation scouting, and recruiting
2. Event Location and Attendee Geographic Origin
Geographic Area Likely Attendee Origin Buyer Concentration Notes
London High probability of attendance from local enterprises, fintechs, consultancies, and startups Very high Canary Wharf location strengthens relevance for banking, financial services, consulting, and enterprise technology audiences
South East England Likely draw from nearby business and university hubs High Accessible for day-trip and short-stay corporate attendees
Wider United Kingdom Likely participation from national enterprise and public-sector technology teams High London remains the main national pull for AI and digital leadership events
Europe Possible attendance from EU technology vendors, buyers, and research communities Medium International reach is plausible, but current-year country list was not verified
Global Potential inbound audience from North America, Middle East, and Asia-Pacific Medium The supplied brief references 40+ countries, but that figure is not independently verified for the current edition
3. Audience Reach
Reach Level Assessment Explanation
Global Primary classification: Global The summit theme, London venue, and user-supplied positioning suggest cross-border appeal to enterprise AI stakeholders. Current-year attendee geography still requires official confirmation.
Secondary reach description National / European strength likely For practical targeting, the UK and nearby European markets are likely to be the strongest near-term buyer pools.
4. Sample Buyer Companies and Websites
Buyer Company / Organization Buyer Type Why It Is Relevant Website Best Job Titles to Target Evidence Level
Current-year buyer company list not publicly verified Data availability note No official current-year attendee, sponsor, exhibitor, or speaker organization list was supplied for validation. N/A N/A Confirmed data unavailable
Enterprise financial services organizations in Canary Wharf and wider London Corporate buyers Likely buyer class for AI, analytics, governance, and decision intelligence solutions due to venue geography and event topic. N/A in absence of official participant list CTO, Head of Data Science, Director of AI, Chief Data Officer Likely attendee profile
Large consultancies and systems integrators serving UK enterprise AI programs Channel / implementation buyers Relevant because these firms influence vendor selection and implementation roadmaps. N/A in absence of official participant list Partner, AI Practice Lead, Data & Analytics Director Likely attendee profile
UK public-sector digital and innovation teams Government / public buyers Potential relevance for responsible AI, analytics modernization, and data governance. N/A in absence of official participant list Head of Data, Digital Transformation Director, Procurement Lead Likely attendee profile
Research institutions and universities with AI programs Research / academic stakeholders Relevant for applied research partnerships, talent pipeline, and model development discussions. N/A in absence of official participant list Professor, Research Director, AI Lab Lead Likely attendee profile
Note: Prior-year participation evidence was not supplied. This section therefore reflects verified data limitations and likely buyer-side participation classes rather than a confirmed current-year attendee list.
5. Job Profiles, Industries and Event Type
Priority Job Title / Function Department Seniority Level Why This Role Matters
1 Chief Technology Officer Technology C-Level Owns AI platform strategy, modernization, and vendor direction.
2 Chief Data Officer Data / Analytics C-Level Leads data governance, architecture, and analytics priorities.
3 Head of AI / Director of AI AI / Innovation Director Direct owner of AI use cases, pilots, and solution comparisons.
4 VP Data & Analytics Analytics VP Influences enterprise analytics stack and transformation roadmap.
5 Director of Data Science Data Science Director Technical decision-maker for model lifecycle and team tooling.
6 Machine Learning Engineering Manager Engineering Manager Evaluates deployment, MLOps, inference, and infrastructure products.
7 Head of Data Engineering Data Engineering Director / Head Key buyer for pipelines, lakehouse, integration, and quality platforms.
8 Procurement Manager Procurement Manager Commercial gatekeeper for software, cloud, and service contracts.
9 Innovation Director Strategy / Innovation Director Sponsors pilots and cross-functional AI transformation programs.
10 Product Manager, AI / Data Product Manager Shapes use cases and integration priorities for business adoption.
Priority Apollo Industry Why It Fits the Event Best Buyer Use Case
1 Information Technology & Services Core fit for AI, data, cloud, and digital transformation buyers AI software, data platforms, consulting
2 Computer Software High concentration of product, engineering, and AI teams Developer tools, MLOps, APIs
3 Financial Services Strong London market relevance and AI adoption intensity Fraud, risk, customer intelligence, automation
4 Banking Canary Wharf location aligns with bank technology buyers Governed AI, analytics, compliance solutions
5 Management Consulting Consultancies influence enterprise AI procurement Implementation partnerships and co-selling
6 Government Administration Relevant for data modernization and responsible AI programs Public-sector analytics and service automation
7 Hospital & Health Care Healthcare is commonly highlighted in AI application tracks Decision support, workflow intelligence, predictive analytics
8 Retail Retail AI use cases are commonly represented in enterprise events Personalization, forecasting, customer analytics
9 Telecommunications Large data-intensive operators are active AI adopters Network analytics, customer retention, automation
10 Research Academic and applied research participation is likely Collaboration, grants, innovation programs
11 Higher Education Universities are relevant for AI research and talent pipelines Research partnerships, training, talent recruitment
12 Computer & Network Security Responsible AI and data security are likely agenda themes Model security, governance, privacy platforms
6. Estimated Attendance
Metric Figure Status Source / Basis Notes
Estimated total footfall Attendance figure not publicly confirmed by the organizer Unconfirmed No official current-year attendance page supplied User-provided descriptive brief mentions 5,000+ professionals, but this conflicts with the supplied venue/date and is not treated as confirmed.
Exhibitor count Not publicly confirmed Unconfirmed No official exhibitor directory supplied Promotional reference mentions 50+ exhibitors; independent verification pending.
Buyer count Not publicly confirmed Unconfirmed No buyer program details supplied Likely mixed audience of technical and business participants rather than a formal hosted-buyer model.
Speaker count Not publicly confirmed Unconfirmed No current-year agenda page supplied Promotional reference mentions 100+ expert speakers; not independently verified.
Sponsor count Not publicly confirmed Unconfirmed No sponsor list supplied Sponsor quality will materially affect lead value for B2B outreach.
Historical attendance Historical / prior-year evidence not supplied Unavailable No prior-year verified records included in the materials reviewed Official archived event pages would improve forecasting confidence.
7. Key Focus Areas and Buyer Engagement
Focus Area Typical Buyer Need Buyer Engagement Opportunity Relevant Supplier Offering
Artificial Intelligence & Machine Learning Model development, deployment, and ROI Use-case discovery and technical demos AI platforms, model services, MLOps
Big Data Analytics & BI Data visibility, insight generation, reporting scale Architecture review and analytics assessment Data warehouses, BI, ETL, dashboards
AI Ethics, Governance & Responsible AI Compliance, explainability, policy alignment Executive and risk stakeholder discussions Governance frameworks, risk tooling, audit solutions
Generative AI Productivity, automation, customer experience Pilot planning and proof-of-value conversations LLM applications, copilots, orchestration layers
Cloud & Data Infrastructure Scalable compute, storage, integration Platform migration and optimization dialogue Cloud services, compute optimization, connectors
Cybersecurity & Privacy Secure AI adoption and protected data environments Risk-led qualification conversations Security controls, privacy tech, access governance
Industry Applications Sector-specific AI value creation Vertical solution alignment Healthcare AI, fintech AI, retail AI, manufacturing analytics
Emerging Technologies Future readiness and innovation scouting Partnership and roadmap conversations Edge AI, quantum-adjacent tooling, advanced research collaboration
Lead Quality Assessment
Factor Assessment Explanation
Buyer relevance High Strong fit for AI, data, cloud, analytics, governance, and consulting offers.
Decision-maker availability High Likely presence of senior technology, data, and innovation leaders.
Data collection potential Medium Current-year participant lists were not publicly verified, which reduces immediate list-building confidence.
Apollo targeting potential Very High Clear title, industry, department, and geography filters are available for AI-related prospecting.
Geographic targeting potential High London, UK, and broader Europe provide strong B2B account concentration.
Best outreach approach High Use problem-led outreach tied to AI adoption, governance, deployment, and measurable business outcomes.
Overall lead quality High Commercially attractive event category, but event-list certainty depends on official publication of attendees or sponsors.
Best use case High Account-based outreach, sponsorship prospecting, exhibitor sales, and Apollo-based ICP targeting.
Limitations / risks Medium Conflicting date/venue information in supplied materials means all list-claiming activity should wait for official page validation.
Apollo.io Targeting Recommendation
Filter Type Recommended Filters Purpose
Apollo industries Information Technology & Services; Computer Software; Financial Services; Banking; Management Consulting; Government Administration; Hospital & Health Care; Retail; Telecommunications; Research; Higher Education; Computer & Network Security Capture the most likely enterprise AI adopter categories.
Departments Engineering; Information Technology; Data / Analytics; Product; Innovation; Procurement; Operations; Research Focus on technical evaluators and business sponsors.
Seniority C-Level; VP; Head; Director; Manager Prioritize budget owners and implementation leads.
Job titles CTO; Chief Data Officer; Chief AI Officer; VP Data & Analytics; Head of AI; Director of Data Science; Head of Data Engineering; ML Engineering Manager; Innovation Director; Product Manager AI; Procurement Manager Narrow to roles most likely to purchase, approve, or influence AI adoption.
Geography United Kingdom; London; England; Ireland; Netherlands; Germany; France; Nordics; broader Europe where relevant Build concentric market layers around the host city and regional tech hubs.
Employee size 51-200; 201-500; 501-1000; 1001-5000; 5001+ Cover both scale-up buyers and enterprise transformation accounts.
Keywords AI, artificial intelligence, machine learning, data science, analytics, MLOps, data platform, generative AI, responsible AI, governance, LLM, predictive analytics Improve relevance where industries alone are too broad.
Technologies Cloud, analytics, BI, data warehouse, AI/ML tooling, security stack where available in Apollo enrichment Target active technology adopters rather than passive interest.
Revenue range Mid-market to enterprise; adjust by client ACV Align account size to deal economics.
Company type Public companies, private growth firms, enterprise subsidiaries, government-linked entities, universities Broaden targeting across commercial and institutional buyer types.
Suggested Apollo Search Logic: ("artificial intelligence" OR AI OR "machine learning" OR "data science" OR analytics OR MLOps OR "generative AI" OR LLM) AND (CTO OR "Chief Data Officer" OR "Head of AI" OR "Director of Data Science" OR "VP Data" OR "Head of Data Engineering") AND (London OR United Kingdom OR Europe).
Client Fit Review Required
Please share the client website or product/service details. I will review the client offering and identify the highest-fit buyer companies, Apollo industries, seniority levels, departments, and job titles from this event.
Sources & Verification Notes
Source Type What It Verified Reliability
User-supplied known details Client-provided event data Event name, city, country, venue, start date, end date Medium
User-supplied descriptive brief Promotional text / reference description Likely event themes, audience profile, and promotional scale claims Low to Medium due to conflict with supplied date and venue
Radisson Hotels Venue brand website Venue brand existence and hospitality operator context High for venue brand; not sufficient alone to confirm event booking
Canary Wharf Location context Business district relevance for finance and enterprise technology audiences High for district context
Official event site / organizer page Primary source expected Still required to confirm organizer, agenda, attendee scale, speakers, sponsors, and current-year participant organizations Not yet verified from supplied materials
Suitability for B2B attendee list building: Conditionally suitable. The event category and buyer profile are commercially attractive, but current-year list monetization or attendance claims should only proceed after official organizer, speaker, sponsor, or attendee source validation.

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