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Goldman Sachs

Goldman Sachs

Global investment banking and asset management

AI Solutions Engineer - Vice President

Full-Time
No salary listed
Expert
Bachelor's, Master's
London, UK
In Person

About the job

Requirements
  • A Bachelor's or Master's degree in Computer Science, Software Engineering, or a related quantitative field.
  • At least 9 years of hands-on software engineering experience, including building and deploying robust applications and significant experience integrating artificial intelligence and machine learning models.
  • Experience building and deploying end-to-end applications that leverage large language models and related frameworks, including prompt engineering, application programming interface integration, and agentic frameworks.
  • Strong proficiency in Python, Java, or Go, with experience integrating relevant artificial intelligence and machine learning frameworks such as TensorFlow or PyTorch.
  • Ability to translate complex business requirements into cloud-optimized application architectures, scalable relational, NoSQL, or graph data models, and technical specifications, then implement production-ready systems.
  • Extensive experience with major cloud platforms such as Amazon Web Services, Microsoft Azure, or Google Cloud Platform, including serverless services, containerization, and managed artificial intelligence and machine learning platforms.
  • Strong command of DevOps and MLOps practices for automated deployment, monitoring, lifecycle management, data pipeline orchestration, and cloud security standards.
  • Ability to articulate complex technical concepts to technical and non-technical stakeholders across all organizational levels.
  • Ability to lead or significantly contribute to cross-functional projects.
  • Ability to build evaluation frameworks for open-source and foundational large language models; implement retrieval pipelines, prompt synthesis, response validation, and self-correction loops for production operations.
  • Ability to connect agents to observability, incident management, and deployment systems for automated diagnostics, runbook execution, remediation, and post-incident summarization with full traceability.
  • Ability to optimize cost and latency through prompt engineering, context management, caching, model routing, and distillation, and to use batching, streaming, and parallel tool calls to meet stringent service-level objectives.
  • Ability to design and implement tool-calling agents combining retrieval, structured reasoning, and secure action execution through function calling, change orchestration, policy enforcement, and the Model Context Protocol.
Responsibilities
  • Lead end-to-end application development integrating artificial intelligence and machine learning models, from architectural and data schema design through data pipeline construction, prototyping, deployment, and operationalization.
  • Use cloud-native services, including serverless services, containerization, managed artificial intelligence and machine learning platforms, and continuous integration and continuous delivery pipelines.
  • Implement MLOps practices for model deployment, monitoring, lifecycle management, data versioning, feature-store integration, and data pipeline management.
  • Collaborate with business and engineering teams to understand challenges and customer needs, identify opportunities for artificial intelligence integration, and translate requirements into architectures, data models, and technical specifications.
  • Architect, implement, and deliver scalable, maintainable cloud-native artificial intelligence applications that integrate with existing systems and workflows.
  • Apply software engineering, data modeling, DevOps, MLOps, cloud security, deployment automation, testing, and monitoring practices.
  • Facilitate knowledge transfer through documentation, training, mentorship, and pair programming.
  • Evaluate and recommend new tools, techniques, and architectural patterns for artificial intelligence application delivery.
  • Partner with production engineers and application teams to translate production pain points into agentic artificial intelligence roadmaps, define objective functions tied to reliability, risk reduction, and cost, and deliver auditable outcomes.
Desired Qualifications
  • Experience with relational, NoSQL, and graph data modeling.
  • Experience with serverless, containerization, and managed artificial intelligence and machine learning cloud services.
  • Experience with observability, incident management, deployment systems, automated diagnostics, runbook execution, remediation, and post-incident summarization.

About the company

Goldman Sachs provides financial services for corporations, governments, institutions, and individuals, including advisory on mergers and acquisitions, underwriting and distributing securities, asset and wealth management, and market making across fixed income, currencies, commodities, and equities. Its products work by delivering strategic advice, financing, liquidity, and asset management across multiple classes, using client funds and its own capital to raise, deploy, and manage capital for clients. The firm differentiates itself through its global scale, comprehensive range of services, deep client relationships, and long-standing presence in capital markets. Its goal is to help clients raise and deploy capital, manage risk, and grow wealth while earning fees and returns from advisory, trading, lending, and asset management activities.

Company Size

10,001+

Company Stage

IPO

Headquarters

New York City, New York

Founded

1869

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Simplify's Take

What believers are saying

  • Goldman Sachs Asset Management launched AlphaAI on July 30, 2026.
  • Since 2025, Goldman Sachs logged nearly 900 wealth referrals from investment banking.
  • Goldman-backed Xpansiv, Exein, and A5X show strong private-market deal flow in 2026.

What critics are saying

  • Goldman Sachs is cutting underperformers in April 2026, signaling continued internal pressure.
  • The 1MDB shareholder settlement follows years of scandal baggage and ongoing reputational drag.
  • CFPB's 2024 Apple Card redress exposes consumer-franchise weaknesses that regulators can revisit.

What makes Goldman Sachs unique

  • Goldman Sachs' investment banking still converts referrals into wealth clients across divisions.
  • One Goldman Sachs 3.0 ties banking, asset management, and AI into a single operating model.
  • AlphaAI gives Goldman Sachs proprietary AI investing capabilities across public and private markets.

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Benefits

Health Insurance

Dental Insurance

Vision Insurance

Life Insurance

Disability Insurance

Health Savings Account/Flexible Spending Account

Paid Vacation

Paid Sick Leave

Paid Holidays

Professional Development Budget

Company News

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