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Assistant Director - Applied AI Engineer

Job in City of Edinburgh, Edinburgh, City of Edinburgh Area, EH1, Scotland, UK
Listing for: hackajob
Full Time position
Listed on 2026-05-26
Job specializations:
  • IT/Tech
    AI Engineer, Data Analyst
Salary/Wage Range or Industry Benchmark: 80000 - 100000 GBP Yearly GBP 80000.00 100000.00 YEAR
Job Description & How to Apply Below
Location: City of Edinburgh

Skills And Competencies

  • Strong problem‑solving capability, with the ability to break down ambiguous business problems, form and test hypotheses, reason from first principles, and determine when AI is the right solution versus simpler alternatives.
  • Confident stakeholder communication and presentation skills, with the ability to explain complex technical concepts to non‑technical audiences, present trade‑offs to senior leaders, and translate effectively between engineering, product, and business teams.
  • Proven ability in requirements gathering and user experience design, including eliciting and documenting business needs, designing intuitive AI‑powered experiences, and incorporating iterative user feedback.
  • Adaptability and comfort working through ambiguity, adjusting technical and delivery approaches as new evidence, feedback, or business priorities emerge.
  • Hands‑on applied AI engineering experience, including proficiency in Python, JavaScript, or similar languages, and practical use of modern GenAI and agent frameworks such as Lang Chain, Llama Index, or Smol Agents.
  • Experience building, deploying, and maintaining production‑grade AI systems that deliver measurable business value.
  • Working knowledge of data management, including data architecture, governance, and privacy considerations, with experience using tools such as Pandas, Num Py, SQL, and a major cloud platform (AWS, Azure, or GCP).
  • Practical experience with production reliability, including monitoring, release gates, rollback strategies, incident response, and managing trade‑offs between quality, latency, and cost.
  • Experience evaluating emerging AI technologies and frameworks, designing structured bake‑offs, and making evidence‑based recommendations.
  • Demonstrates deep expertise in applying AI responsibly, including consideration of ethical use, risk management, and governance in production environments.
Education
  • Bachelor’s degree required in Computer Science, Data Science, Statistics, Mathematics, Business, Information Systems, or a related field.
  • Master’s degree or PhD welcomed, or equivalent demonstrable experience in applied AI.
  • Demonstrated commitment to continuous professional development in AI or machine learning through certifications, publications, conference participation, or similar evidence of staying current in the field.
Responsibilities

Operate as a senior individual contributor who partners closely with the business to design, deliver, and embed applied AI solutions from initial concept through to reliable production use.

  • Partner with business stakeholders and workstream leads to understand operational challenges and translate them into AI solutions aligned with business priorities.
  • Present progress, options, risks, and trade‑offs clearly and confidently to senior leaders, keeping stakeholders and delivery teams aligned.
  • Own the end‑to‑end user journey for solutions, including requirements gathering, experience design, rollout planning, user training, and feedback capture.
  • Frame and structure problems rigorously before designing solutions, ensuring clarity of scope, assumptions, and success criteria.
  • Design, build, and deploy AI‑powered solutions such as automation, intelligent data pipelines, predictive analytics, and custom internal tools, holding work to a quality standard appropriate for the financial services industry.
  • Own the reliability of AI services in production, including defining release gates, monitoring, rollback strategies, and incident response processes.
  • Profile system performance, manage token and compute usage, and balance solution quality, latency, and cost.
  • Apply responsible AI practices, including privacy, security, and bias‑mitigation controls, and participate in required reviews, sign‑offs, and documentation.
  • Run structured evaluations and bake‑offs of models, tools, and frameworks, and provide evidence‑based recommendations.
  • Contribute to the Applied AI team’s shared practice through documentation, demos, reference patterns, walkthroughs, and mentoring of more junior engineers.
  • Plan and execute work with strong delivery discipline, surfacing risks and dependencies early and landing deliverables on time and within…
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