AI Automation Engineer

AI Automation Engineer

Full-Time 36000 - 60000 £ / year (est.) No home office possible
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At a Glance

  • Tasks: Analyse and optimise business processes while designing intelligent automation solutions.
  • Company: Leading financial services firm in London with a focus on innovation.
  • Benefits: Hybrid work model, competitive salary, and opportunities for professional growth.
  • Why this job: Join a dynamic team and leverage cutting-edge AI technologies to drive real change.
  • Qualifications: Proficiency in Python, AI/ML frameworks, and experience with automation tools.
  • Other info: Collaborative environment with strong emphasis on career development and learning.

The predicted salary is between 36000 - 60000 £ per year.

A leading financial services client in London is seeking a talented AI Automation Engineer to join their team. Please see below for key details.

Role Overview: Analyse and optimise business processes for automation whilst designing, building, and deploying intelligent automation solutions using BPA platforms (Appian), Machine Learning, and Generative AI to drive operational efficiency and innovation.

Key Characteristics:

  • Process Analysis & Optimisation: Expert in analysing existing business processes through stakeholder interviews, process mapping, and workflow documentation to identify automation opportunities. Skilled in creating process flow diagrams, conducting time-motion studies, identifying bottlenecks and inefficiencies, and redesigning processes to be machine-readable and automation-ready using methodologies.
  • Python Development: Strong proficiency in Python programming including object-oriented design, asynchronous programming, error handling, and writing clean, maintainable code. Experience with key libraries including Pandas, NumPy for data manipulation, requests and APIs for integrations, asyncio for concurrent processing, and building robust automation scripts with proper logging, testing (pytest), and documentation.
  • AI & Machine Learning Frameworks: Deep expertise in AI/ML frameworks including TensorFlow, PyTorch, Scikit-learn, and Hugging Face Transformers. Experience building, training, and deploying machine learning models for classification, regression, clustering, and NLP tasks. Understanding of model evaluation metrics, hyperparameter tuning, feature engineering, and MLOps practices for production deployment.
  • Generative AI & LLM Integration: Proficient in working with Large Language Models including OpenAI GPT models, Anthropic Claude, Azure OpenAI, and open-source alternatives (Llama, Mistral). Experience with prompt engineering, fine-tuning, RAG (Retrieval Augmented Generation) architectures, vector databases (Pinecone, ChromaDB, FAISS), embeddings, and building AI-powered automation solutions that leverage natural language understanding.
  • Appian BPA Platform: Strong experience with Appian low-code platform including process modelling, interface design, expression rules, integration objects, and data modelling. Skilled in building end-to-end business process applications, configuring workflows, implementing business rules, managing records, and integrating Appian with external systems via REST APIs, web services, and connected systems.
  • API Development & Integration: Proficient in designing and building RESTful APIs using FastAPI, Flask, or Django REST Framework for exposing AI models and automation services. Experience with API authentication (OAuth, JWT), rate limiting, error handling, API documentation (Swagger/OpenAPI), webhooks, and integrating disparate systems to create seamless automated workflows.
  • Document Processing & OCR: Experience implementing intelligent document processing solutions using OCR technologies (Tesseract, Azure AI Document Intelligence), natural language processing for information extraction, document classification, and building end-to-end pipelines for automated document ingestion, processing, and data extraction with validation rules.
  • Robotic Process Automation (RPA): Knowledge of RPA concepts and tools (UiPath, Automation Anywhere, Power Automate) for automating repetitive tasks, screen scraping, and legacy system integration. Ability to assess when RPA vs. API integration vs. AI solutions are most appropriate, and experience building hybrid automation solutions combining multiple technologies.
  • Data Engineering & Pipeline Development: Strong skills in building data pipelines for AI/automation solutions including data extraction, transformation, and loading (ETL). Experience with SQL databases (SQL Server), data validation, cleansing workflows, scheduling tools (Azure Data Factory), and ensuring data quality for machine learning applications.
  • Machine Learning Operations (MLOps): Experience deploying ML models to production environments using containerisation (Docker), orchestration (Kubernetes), model versioning (MLflow, DVC), monitoring model performance and drift, A/B testing frameworks, and implementing CI/CD pipelines for automated model training and deployment. Understanding of model governance, explainability, and compliance requirements.
  • Solution Architecture & Technical Design: Ability to design end-to-end automation architectures that combine multiple technologies (BPA, ML, GenAI, APIs) into cohesive solutions. Experience creating technical design documents, system architecture diagrams, assessing build vs. buy decisions, estimating effort and complexity, and presenting technical recommendations to both technical and non-technical stakeholders.
  • Stakeholder Collaboration & Change Management: Excellent communication skills for gathering requirements from business users, translating business needs into technical specifications, and demonstrating proof-of-concepts. Experience managing stakeholder expectations, conducting user acceptance testing, providing training on automated solutions, measuring automation ROI through KPIs (time saved, error reduction, cost savings), and driving adoption of intelligent automation across the organisation.

If you align to the key requirements then please apply with an updated CV.

AI Automation Engineer employer: Mccabe & Barton

Join a leading financial services firm in London as an AI Automation Engineer, where innovation meets opportunity. With a hybrid work model, you will thrive in a collaborative culture that prioritises employee growth through continuous learning and development. Enjoy competitive benefits and the chance to work on cutting-edge technologies that drive operational efficiency and transform business processes.
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Contact Detail:

Mccabe & Barton Recruiting Team

StudySmarter Expert Advice 🤫

We think this is how you could land AI Automation Engineer

✨Network Like a Pro

Get out there and connect with people in the industry! Attend meetups, webinars, or even just grab a coffee with someone who works in AI or automation. You never know who might have a lead on your dream job!

✨Show Off Your Skills

Create a portfolio showcasing your projects, especially those involving Python, machine learning, or automation solutions. Having tangible examples of your work can really set you apart when chatting with potential employers.

✨Ace the Interview

Prepare for technical interviews by brushing up on your coding skills and understanding key concepts in AI and automation. Practice common interview questions and be ready to discuss your past projects in detail.

✨Apply Through Us!

Don’t forget to apply through our website! We’re always on the lookout for talented individuals like you, and applying directly can give you a better chance of landing that AI Automation Engineer role.

We think you need these skills to ace AI Automation Engineer

Process Analysis & Optimisation
Python Development
AI & Machine Learning Frameworks
Generative AI & LLM Integration
Appian BPA Platform
API Development & Integration
Document Processing & OCR
Robotic Process Automation (RPA)
Data Engineering & Pipeline Development
Machine Learning Operations (MLOps)
Solution Architecture & Technical Design
Stakeholder Collaboration & Change Management

Some tips for your application 🫡

Tailor Your CV: Make sure your CV is tailored to the AI Automation Engineer role. Highlight your experience with Python, AI/ML frameworks, and automation solutions. We want to see how your skills match what we're looking for!

Showcase Your Projects: Include any relevant projects or experiences that demonstrate your expertise in process optimisation and automation. If you've built something cool using Appian or worked with large language models, let us know!

Be Clear and Concise: When writing your application, keep it clear and to the point. Use bullet points where possible to make it easy for us to see your key achievements and skills. We appreciate a well-structured application!

Apply Through Our Website: Don't forget to apply through our website! It’s the best way for us to receive your application and ensures you’re considered for the role. We can’t wait to see what you bring to the table!

How to prepare for a job interview at Mccabe & Barton

✨Know Your Tech Inside Out

Make sure you brush up on your Python skills and the AI/ML frameworks mentioned in the job description. Be ready to discuss your experience with libraries like Pandas and TensorFlow, and prepare to showcase any projects where you've built or deployed machine learning models.

✨Process Mapping Mastery

Since process analysis and optimisation are key parts of the role, practice explaining how you've identified automation opportunities in past projects. Bring examples of process flow diagrams or time-motion studies you've conducted to demonstrate your analytical skills.

✨Show Off Your API Skills

Be prepared to talk about your experience with RESTful APIs and how you've integrated them into automation solutions. Discuss any specific tools you've used, like FastAPI or Flask, and be ready to explain how you handle authentication and error management.

✨Communicate Like a Pro

Strong communication skills are essential for this role. Practice articulating complex technical concepts in a way that non-technical stakeholders can understand. Think about how you've gathered requirements and managed expectations in previous roles, and be ready to share those experiences.

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