Job Detail

Applied Data Scientist - UK

Data Science and AI Full–time
ID: #12282
Posted: 2026-02-25
Salary

Description

Job Title: Applied Analytics Engineer Compensation Range: £70,000-£90,000 + 10% bonus (Depending on Experience) This role is remote anywhere in the UK. Models. Insights. Outcomes. Become one of the changemakers. At Quid, you won't just be joining a team, but contributing to a culture of innovation, where every challenge becomes an opportunity to learn and grow. When you join our team, you're not just stepping into a job, you're embracing a future where we lead the game with the unmatched advantage of foresight. Overview As an Applied Data Scientist at Quid, you will build data and AI-driven systems, integrate APIs, and support LLM-based agentic processes to create reliable and actionable data flows. You will also bring stronger experimentation and validation rigor to our delivery - designing baselines, running evaluation cycles, and building predictive and statistical models where they create clear customer value. This role suits someone who enjoys end-to-end automation, collaborating with analytics and engineering teams, and turning ambiguous needs into scalable solutions. Your work will power key insights and operational outputs across professional services (known as our Outcome Engineering Team), enabling faster delivery, higher data quality, and AI-driven prototypes. You won't just build workflows - you'll help shape the next evolution of our data and automation ecosystem and the intellectual property that underpins it. Key Responsibilities Build workflow automations in n8n, developing modular, reusable sub-workflows and scalable patterns, including structured outputs for Coda briefs and visualisation platforms. Integrate with internal and external APIs, handling authentication, error recovery, retries, rate limits, and tolerant connectivity patterns. Build and refine agentic workflows using LLMs, including guardrails, safe failure modes, and input validation, and experiment with emerging automation and AI frameworks to introduce new patterns and capabilities. Monitor and troubleshoot workflow executions across APIs, agentic behaviour, data transformations, and orchestration layers, implementing effective logging, alerting, and debugging strategies. Design and run validation studies and experiments (gold sets, baselines, metric selection, error analysis) to measure and improve workflow and model quality. Build and operationalise predictive and statistical models in Python where they create clear value, including evaluation plans and drift monitoring approaches. Break down ambiguous requests into scoped work packages, prototypes, and MVPs. Own workflows end to end, from concept to deployment to ongoing monitoring. Required Qualifications Core languages: Strong Python skills for analysis, experimentation, and modelling. Basic JavaScript for writing expressions and transformations in n8n. Strong SQL skills (PostgreSQL preferred). Experience: 2-3 years building automation, data pipelines, integration workflows, or applied analytics/data science solutions in production contexts. Predictive/statistical modelling: Experience building and evaluating machine learning models (e.g., regression/classification/time series approaches) and translating results into practical workflow decisions. Experimentation and validation: Experience defining baselines, selecting evaluation metrics, labeling/QA of ground truths, running iterative validation cycles to improve quality, and drift monitoring. Workflow automation: Hands-on experience with n8n (or comparable workflow automation tools), including modular workflow design and reusable patterns. API integration: Experience integrating APIs with robust error handling, authentication, rate limiting, and debugging. Visualisation: Ability to deliver structured outputs and support lightweight visualisation needs. Data handling: Ability to manipulate and validate structured datasets (JSON, CSV, YAML) with attention to data quality and schema consistency. Engineering foundations: Testing and QA practices, deployment workflows, documentation habits, modularisation, and coding best practices. Observability and reliability: Strong monitoring, logging, alerting, and troubleshooting capabilities for multi-step automation systems. Change management: Experience promoting workflows safely into production and managing production-impacting updates. Ways of working: Requirements gathering, comfort with ambiguity, iterative prototyping, and end-to-end workflow ownership. Communication: Ability to translate technical concepts, risks, and constraints into clear guidance for stakeholders. Preferred Qualifications LLM ecosystem: Exposure to embeddings, vector stores, or retrieval-augmented generation (RAG) patterns AI and agentic workflows: Experience building and maintaining LLM-based workflows with guardrails, hallucination mitigation, and safe failure patterns. Prompt engineering and LLM interaction design: Experience designing and maintaining production-grade prompts for LLM-driven systems, including clear instruction framing, structured and schema-constrained outputs, and few-shot strategies. Ability to align prompts to business intent and design prompts that are reliable within multi-step automated workflows. AI evaluation frameworks: Familiarity with approaches for assessing LLM or agent performance, including rubric-based evaluation and monitoring for quality drift. Environment management: Experience working across development, staging, and production environments with safe workflow promotion. Collaboration: Ability to review peer workflows and provide constructive feedback. Curiosity and experimentation: Willingness to explore emerging automation, LLM, and agentic frameworks. Industry context: Experience working with SaaS, analytics, or AI-driven products. Total Rewards! We want to make sure our employees feel valued and taken care of. Come join us and see for yourself! Competitive compensation with commission or bonus structure 9 Bank Holidays 28 days of PTO 4 weeks sabbatical after 5 years AXA Medical cover available at no cost for employee and shared cost for dependents Travel Cover Life Insurance Income Protection EAP Pension through Scottish Widows Still Not Sure? We understand that many candidates tend to only apply for jobs if they meet every single requirement listed. However, if you happen to be genuinely enthusiastic about this particular position and feel confident in your ability to excel at it, we strongly urge you to submit your application! You might just be the perfect fit for this role, or even another exciting opportunity within our company. Remote Work! Remote-first; We're thrilled to say that we've been passionate about remote work since day one! Being remote is simply who we are. At Quid, we're all about connecting with people from all corners of the globe. Our team is made up of individuals who are comfortable working remotely and collaborating with others across different time zones. We’re looking forward to future growth and expansion, however, certain legal restrictions dictate that we are only able to accept candidates who possess eligibility to work in the United States of America. About Quid Unlike legacy SaaS vendors, we combine the power of our data, AI and people to deliver the outcomes our clients want. We don’t leave clients to flounder in complicated and expensive tools and hope they figure it out. We clarify what the win looks like and partner to deliver it. Location Remote, EMEA #LI-REMOTE    #LI-AP1   Powered by JazzHR

Hard Skills 13
Skill Source Confidence
Time Series Analysis llm_hard
100%
SQL llm_hard
100%
Classification Algorithms llm_hard
100%
Regression Algorithms llm_hard
100%
Large Language Models (LLMs) llm_hard
100%
MLOps llm_hard
100%
Python llm_hard
100%
Data Pipelines llm_hard
100%
Prompt Engineering llm_hard
100%
RAG (Retrieval-Augmented Generation) llm_hard
100%
Model Deployment llm_hard
100%
ETL Pipelines llm_hard
80%
NLP llm_hard
80%
Soft Skills 16
Skill Source Confidence
Analytical Thinking llm_soft
100%
Collaboration llm_soft
100%
Problem-Solving llm_soft
100%
Critical Thinking llm_soft
100%
Giving and Receiving Feedback llm_soft
100%
Adaptability llm_soft
80%
Flexibility llm_soft
80%
Learning Agility llm_soft
80%
Self-Motivation llm_soft
80%
Initiative llm_soft
80%
Continuous Improvement llm_soft
80%
Curiosity llm_soft
80%
Stakeholder Communication llm_soft
80%
Technical Writing llm_soft
80%
Documentation llm_soft
80%
Creative Problem Solving llm_soft
80%
Apply Options
Publisher Direct Link
Artificial Intelligence Jobs No Apply
Jooble No Apply
Jobs - ALPFA Job Board - ALPFA No Apply
Colorintech Job Board No Apply
Job Board - Next Frontier Capital No Apply
Talent.com Yes Apply
Job Search Place UK No Apply
Jobg8 No Apply
Artificial Intelligence Jobs No Apply
API Logs for this Job
Query Country Status Response ms Created
Applied Data Scientist - UK extracted 13720 2026-03-22 03:15
Applied Data Scientist - UK classified 448 2026-03-21 21:16
graduate data scientist in London gb processed 8521 2026-03-21 17:19
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  "job_description": "Job Title: Applied Analytics Engineer Compensation Range: £70,000-£90,000 + 10% bonus (Depending on Experience) This role is remote anywhere in the UK. Models.\n\nInsights.\n\nOutcomes. Become one of the changemakers.\n\nAt Quid, you won't just be joining a team, but contributing to a culture of innovation, where every challenge becomes an opportunity to learn and grow.\n\nWhen you join our team, you're not just stepping into a job, you're embracing a future where we lead the game with the unmatched advantage of foresight. Overview As an Applied Data Scientist at Quid, you will build data and AI-driven systems, integrate APIs, and support LLM-based agentic processes to create reliable and actionable data flows.\n\nYou will also bring stronger experimentation and validation rigor to our delivery - designing baselines, running evaluation cycles, and building predictive and statistical models where they create clear customer value. 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Build and refine agentic workflows using LLMs, including guardrails, safe failure modes, and input validation, and experiment with emerging automation and AI frameworks to introduce new patterns and capabilities. Monitor and troubleshoot workflow executions across APIs, agentic behaviour, data transformations, and orchestration layers, implementing effective logging, alerting, and debugging strategies. Design and run validation studies and experiments (gold sets, baselines, metric selection, error analysis) to measure and improve workflow and model quality. Build and operationalise predictive and statistical models in Python where they create clear value, including evaluation plans and drift monitoring approaches. Break down ambiguous requests into scoped work packages, prototypes, and MVPs. Own workflows end to end, from concept to deployment to ongoing monitoring. Required Qualifications Core languages: Strong Python skills for analysis, experimentation, and modelling. Basic JavaScript for writing expressions and transformations in n8n.\n\nStrong SQL skills (PostgreSQL preferred). Experience: 2-3 years building automation, data pipelines, integration workflows, or applied analytics/data science solutions in production contexts. Predictive/statistical modelling: Experience building and evaluating machine learning models (e.g., regression/classification/time series approaches) and translating results into practical workflow decisions. Experimentation and validation: Experience defining baselines, selecting evaluation metrics, labeling/QA of ground truths, running iterative validation cycles to improve quality, and drift monitoring. Workflow automation: Hands-on experience with n8n (or comparable workflow automation tools), including modular workflow design and reusable patterns. API integration: Experience integrating APIs with robust error handling, authentication, rate limiting, and debugging. Visualisation: Ability to deliver structured outputs and support lightweight visualisation needs. Data handling: Ability to manipulate and validate structured datasets (JSON, CSV, YAML) with attention to data quality and schema consistency. Engineering foundations: Testing and QA practices, deployment workflows, documentation habits, modularisation, and coding best practices. Observability and reliability: Strong monitoring, logging, alerting, and troubleshooting capabilities for multi-step automation systems. Change management: Experience promoting workflows safely into production and managing production-impacting updates. Ways of working: Requirements gathering, comfort with ambiguity, iterative prototyping, and end-to-end workflow ownership. Communication: Ability to translate technical concepts, risks, and constraints into clear guidance for stakeholders. Preferred Qualifications LLM ecosystem: Exposure to embeddings, vector stores, or retrieval-augmented generation (RAG) patterns AI and agentic workflows: Experience building and maintaining LLM-based workflows with guardrails, hallucination mitigation, and safe failure patterns. Prompt engineering and LLM interaction design: Experience designing and maintaining production-grade prompts for LLM-driven systems, including clear instruction framing, structured and schema-constrained outputs, and few-shot strategies.\n\nAbility to align prompts to business intent and design prompts that are reliable within multi-step automated workflows. AI evaluation frameworks: Familiarity with approaches for assessing LLM or agent performance, including rubric-based evaluation and monitoring for quality drift. Environment management: Experience working across development, staging, and production environments with safe workflow promotion. Collaboration: Ability to review peer workflows and provide constructive feedback. Curiosity and experimentation: Willingness to explore emerging automation, LLM, and agentic frameworks. Industry context: Experience working with SaaS, analytics, or AI-driven products. Total Rewards! We want to make sure our employees feel valued and taken care of.\n\nCome join us and see for yourself! Competitive compensation with commission or bonus structure 9 Bank Holidays 28 days of PTO 4 weeks sabbatical after 5 years AXA Medical cover available at no cost for employee and shared cost for dependents Travel Cover Life Insurance Income Protection EAP Pension through Scottish Widows Still Not Sure? We understand that many candidates tend to only apply for jobs if they meet every single requirement listed. However, if you happen to be genuinely enthusiastic about this particular position and feel confident in your ability to excel at it, we strongly urge you to submit your application! 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