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Ai Analyst Job Jobs (NOW HIRING)

We are seeking a motivated AI Analyst Co-op to join our team and support the design, development, and deployment of artificial intelligence and machine learning solutions. This role offers hands-on ...

We are seeking a motivated AI Analyst Co-op to join our team and support the design, development, and deployment of artificial intelligence and machine learning solutions. This role offers hands-on ...

Position Summary The AI Engineer/Analyst is a dual discipline role operating across two integrated workstreams. On the engineering side, you will evaluate emerging AI tools, platforms, and agents ...

Data & AI Analyst

New York, NY · On-site

$125K - $175K/yr

About the Role The Data & AI Analyst (Operations) will be a core member of the Business Operations team, sitting at the intersection of customer implementation, internal tooling, and data operations.

Position Summary The AI Engineer/Analyst is a dual discipline role operating across two integrated workstreams. On the engineering side, you will evaluate emerging AI tools, platforms, and agents ...

Position Summary The AI Engineer/Analyst is a dual discipline role operating across two integrated workstreams. On the engineering side, you will evaluate emerging AI tools, platforms, and agents ...

AI Analyst Belong. Connect. Grow. with KBR! KBR's National Security Solutions team provides high-end engineering and advanced technology solutions to our customers in the intelligence and national ...

New

As an AI Analyst , you will work on a diverse array of projects applying AI/ML techniques to areas such as customer insights, sales enablement, marketing optimization, and enterprise automation. You ...

We are hiring a Principal AI/ML Analyst & Developer to design, build, and deploy scalable AI, data, and applications across the enterprise. You will work end-to-end (data ingestion modeling API/UI ...

Power Platform AI Analyst Hoffmaster is where tradition meets innovation. For decades, we've been a trusted name in foodservice products but what truly sets us apart is our people. We're a team of ...

As an AI Engineer / Analyst, you'll play a key part in evaluating, building, and scaling AI solutions that drive real business value. From exploring cutting-edge tools to embedding AI into enterprise ...

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Ai Analyst Job information

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$31K

$73.3K

$130K

How much do ai analyst job jobs pay per year?

As of Jun 13, 2026, the average yearly pay for ai analyst job in the United States is $73,261.00, according to ZipRecruiter salary data. Most workers in this role earn between $52,500.00 and $87,000.00 per year, depending on experience, location, and employer.

What is the difference between Ai Analyst Job vs Data Scientist?

AspectAi Analyst JobData Scientist
Required CredentialsBachelor's in CS, Data Science, or related field; certifications in AI or MLBachelor's or Master's in CS, Statistics, or related; advanced certifications preferred
Work EnvironmentTech companies, finance, healthcare; focus on AI model development and analysisResearch labs, tech firms, finance; focus on data exploration and predictive modeling
Employer & Industry UsageUsed in industries implementing AI solutions, automation, and machine learning projectsUsed across industries for data analysis, predictive analytics, and data-driven decision making

While both roles involve data analysis and technical skills, Ai Analysts primarily focus on developing and implementing AI models, whereas Data Scientists work on broader data exploration and predictive modeling. The roles often overlap but differ in scope and specific focus areas.

What are the key skills and qualifications needed to thrive as an AI Analyst, and why are they important?

To thrive as an AI Analyst, you need a solid foundation in data analysis, machine learning principles, statistics, and a relevant degree such as computer science or data science. Familiarity with programming languages like Python or R, experience with data visualization tools, and knowledge of AI frameworks such as TensorFlow or PyTorch are typically required. Analytical thinking, problem-solving ability, and effective communication stand out as critical soft skills for interpreting data and conveying insights to stakeholders. These competencies are vital for turning complex data into actionable business strategies and ensuring successful implementation of AI solutions.

What are some common challenges AI Analysts face when interpreting data, and how can they overcome them?

AI Analysts often encounter challenges such as data quality issues, ambiguous problem statements, and rapidly evolving technologies. To overcome these, it's important to collaborate closely with stakeholders to clarify objectives, maintain good data hygiene through regular validation and cleansing, and stay updated on the latest analytical tools and AI frameworks. Additionally, strong communication skills help AI Analysts translate complex findings into actionable insights for non-technical team members.

What is an AI Analyst?

An AI Analyst is a professional who examines, interprets, and evaluates data and systems related to artificial intelligence to help organizations make data-driven decisions. They use statistical methods, machine learning models, and data visualization tools to analyze trends and performance of AI technologies. Their responsibilities often include preparing reports, advising on AI adoption, and ensuring AI solutions align with business objectives. AI Analysts typically work closely with data scientists, engineers, and business leaders to optimize the use of AI within a company.
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What cities are hiring for Ai Analyst Job jobs? Cities with the most Ai Analyst Job job openings:
What job categories do people searching Ai Analyst Job jobs look for? The top searched job categories for Ai Analyst Job jobs are:
Infographic showing various Ai Analyst Job job openings in the United States as of June 2026, with employment types broken down into 87% Full Time, 3% Part Time, 1% Temporary, and 9% Contract. Highlights an 66% Physical, 4% Hybrid, and 30% Remote job distribution, with an average salary of $73,261 per year, or $35.2 per hour.
Applied AI Analyst

Other

Posted 21 hours ago


Job description

Come Work With Us:

Metropolitan Commercial Bank ("MCB" or the "Bank") is a New York City-based, full-service commercial bank providing tailored banking solutions to businesses, institutions, and individuals. Founded in 1999, MCB operates banking centers in Manhattan and Boro Park, Brooklyn, within New York City, as well as in Great Neck on Long Island, New York, and Lakewood, New Jersey. The Bank recently expanded to Miami, Florida with their newest Brickell banking center.

Metropolitan Commercial Bank offers a comprehensive suite of commercial, business, and personal banking products and services to small businesses, middle-market and corporate enterprises, private and public institutions, municipalities, and local government entities.

The Bank has earned national recognition for its financial performance, innovation, and strategic growth. The Bank was named one of Newsweek's Best Regional Banks in 2024 and 2025. Additionally, MCB recently received Editor's Choice recognition at the Banking Tech Awards USA for Digital Onboarding & Omnichannel Banking and in 2026, the Bank earned Great Place To Work certification and received the Web Award Standard of Excellence for MCBankNY.com.

We are a client-focused organization that values technological innovation and excellence. A strong technical mindset, AI fluency, and adaptive skills are essential for our employees to effectively contribute to our mission and drive our success. We foster human-AI teaming and strong governance to ensure technology is used responsibly and in alignment with Bank policies and procedures. For more information about the Bank, please visit the Bank's website at MCBankNY.com.

Position Summary:

Metropolitan Commercial Bank (the "Bank") is seeking an Applied AI Analyst to support the design, configuration, testing, and monitoring of applied AI, Generative AI, machine learning, and agentic workflow solutions in a highly regulated banking environment. Working under the guidance of AI Scientists and in partnership with engineering, risk, and business teams, this role focuses on internal human-in-the-loop use cases such as AI-assisted loan documentation generation, fraudulent transaction detection models, policy and knowledge copilots, workflow automation, and other productivity solutions. A meaningful portion of the role is dedicated to AI solution intake and delivery support- learning new business domains, engaging business owners, preparing required documentation, and supporting vendor and risk reviews, so that solutions can be built and deployed under strict control gates and documentation standards aligned to internal and external regulations. The role emphasizes strong documentation, human oversight, privacy-by-design, cybersecurity, and disciplined lifecycle controls aligned to internal and external regulations. The role also emphasizes familiarity with Microsoft Foundry / Foundry Agent Service, approved Microsoft Copilot ecosystems, RAG architectures, and enterprise data platforms such as Snowflake.

Standard 4-day in-office requirement, 1 day remote (of your choosing)

Essential Functions & Responsibilities 

Applied AI solution development & analysis:

  • Support AI Scientists in building, configuring, and testing applied AI/GenAI solutions for high-value banking use cases such as credit memo generation, policy/regulatory summarization, knowledge assistants, and internal productivity copilots.
  • Develop and refine prompts, grounding instructions, structured outputs, evaluation datasets, and Retrieval-Augmented Generation (RAG) pipelines using embeddings, vector search, document chunking, and metadata-driven retrieval.
  • Prepare and transform structured and unstructured data; assist with API integrations, notebooks, and repeatable workflows that improve quality, traceability, and analyst productivity.

Agentic workflow design & orchestration:

  • Assist in designing and testing agentic workflows using approved enterprise platforms and frameworks, including multi-agent patterns, human-in-the-loop approvals, handoffs, and subagent / agents-as-tools designs.
  • Work with emerging interoperability patterns such as Model Context Protocol (MCP), tool / skill / plugin integration, and Agent-to-Agent (A2A) connectivity under supervision and within approved guardrails.
  • Document workflow steps, tool schemas, fallback logic, escalation paths, and safe disablement / rollback procedures for agentic and GenAI solutions.

Microsoft Foundry, Copilot, and enterprise platform enablement:

  • Support prototyping and evaluation in Microsoft Foundry / Foundry Agent Service and related Microsoft ecosystems (for example, Microsoft 365 Copilot) while partnering with Engineering and Data teams operating on Snowflake and other approved enterprise platforms.
  • Assist with prompt and agent configuration, retrieval integration, logging, model / tool versioning, and operational runbooks.

Evaluation, testing, and monitoring:

  • Create and execute test cases for accuracy, groundedness, hallucination, task completion, retrieval quality, bias/fairness, and basic adversarial or prompt-injection scenarios; escalate issues promptly.
  • Track KPIs/KRIs, output quality, drift indicators, and user feedback; maintain evidence needed for pilot reviews, production monitoring, and periodic reassessment.

AI governance, intake documentation, and cybersecurity/privacy controls:

  • Support AI use-case intake and governance processes by preparing required documentation (e.g., AI intake forms, model/system inventories, change-control artifacts, and audit-ready evidence packs) aligned to MCB's Trustworthy & Responsible AI Principles and internal approval processes.
  • Learn domain and process context for new use cases by speaking with business owners and control partners; translate requirements into clear problem statements, data needs, user journeys, control gates, and documentation required to comply with internal and external regulations.
  • Support third-party / AI vendor due diligence by collecting and organizing evidence, reviewing vendor documentation, and helping risk-tier AI vendors and solutions in partnership with Third-Party Risk and Cyber/IT; act as an AI subject matter expert in providing an understanding of AI-specific risks.
  • Apply privacy-by-design, data minimization, access-control, and secure prompt/data handling practices; follow approved tooling and build standards.

Cross-functional partnership and continuous learning:

  • Communicate findings, limitations, and recommendations clearly to AI Scientists, managers, control partners (Model Risk, Compliance/Legal, Cyber/IT, Data Privacy), and business stakeholders; incorporate feedback quickly and accurately.
  • Contribute to playbooks, standard operating procedures, and reusable templates for prompts, evaluations, agent patterns, and workflow controls.

Innovation and best practices:

  • Stay current on practical applied-AI methods-including RAG, evaluation frameworks, agentic workflow design, MCP, A2A, and Microsoft Foundry capabilities-and recommend fit-for-purpose uses under established control gates.
  • Demonstrate sound judgment, curiosity, and willingness to learn from senior AI Scientists while promoting responsible AI, reproducibility, and disciplined execution.

Qualifications & Skills:

  • 2+ years of work experience.
  • Bachelor's degree in Computer Science, Data Science, Statistics, Engineering, Information Systems, Mathematics, or a related field is preferred. Relevant internships, apprenticeships, or comparable hands-on AI, analytics, or automation project experience will be considered.
  • Working knowledge of Python, SQL, notebooks, REST APIs, JSON/YAML, and version control (e.g., Git) for data analysis and AI workflow support.
  • Understanding of traditional machine learning model development and lifecycle concepts, including model training, data leakage prevention, testing/validation, monitoring, and common performance metrics for classification and regression.
  • Familiarity with LLM application patterns, including prompt engineering, structured outputs, function/tool calling, Retrieval-Augmented Generation (RAG), embeddings, and vector search.
  • Familiarity with Microsoft Foundry (including Foundry Agent Service), Microsoft 365 Copilot / Copilot Studio concepts, and approved enterprise data/AI platforms such as Snowflake.
  • Understanding of agentic workflow concepts such as MCP servers/tools, skills/plugins, subagents or agents-as-tools, handoffs, human-in-the-loop controls, and A2A integration patterns.
  • Ability to test and evaluate AI outputs for accuracy, groundedness, hallucination, retrieval quality, bias/fairness, and basic security misuse scenarios.
  • Working knowledge of model and data governance concepts, including documentation, monitoring, change control, inventories, audit trails, and three-lines-of-defense oversight in a regulated environment.
  • Strong written and verbal communication skills; ability to turn technical findings into clear summaries, test evidence, and action items for business and risk stakeholders.
  • Analytical, organized, and adaptable mindset; ability to learn quickly, manage multiple workstreams, and balance innovation with risk discipline.

Preferred Qualifications & Skills

  • Financial services exposure in fraud, AML/KYC/CDD/EDD, underwriting, commercial banking, treasury, policy governance, or contact center analytics.
  • Hands-on experience with Microsoft Foundry / Foundry Agent Service, Azure AI Search or equivalent retrieval tooling, M365 Copilot / Copilot Studio, Snowflake, or similar enterprise AI platforms is a plus.
  • Experience with RAG architectures, vector databases / vector search, document chunking, metadata extraction, OCR/document understanding, and prompt engineering.
  • Exposure to agentic workflow patterns such as MCP tool integration, skills/plugins, handoffs, subagents, A2A, and evaluation frameworks for task completion and tool-call quality.
  • Familiarity with LangChain, Semantic Kernel, LangGraph, Microsoft Agent Framework, or similar orchestration libraries/frameworks is a plus.
  • Awareness of external regulations including SR 11-7, SR 23-4, AI use-case intake / inventory processes, privacy, cybersecurity, and third-party risk expectations in a regulated environment.
  • Ability to work in a constantly evolving environment.
  • Must have excellent written and verbal communication skills.
  • Demonstrate analytical, troubleshooting, and problem-solving skills.
  • The ability to learn new technologies quickly.
  • Self-directed individual with strong organizational and communication skills.
  • Ability to synthesize multiple sources of information with an understanding of the bigger picture needs and operations of the Bank.
  • Collaborative team player who can find practical solutions in a dynamic work environment.
  • Ability to handle ambiguity, manage multiple tasks at once, and shift effectively between priorities.

Potential Salary: $120,000 - $150,000 annually

This salary range reflects base wages and does not include benefits, bonus, or incentive pay. Salary bands are purposefully wide ranging to encompass the different factors considered in determining where a candidate falls in the range, including but not limited to, seniority, performance, experience, education, and any other legitimate, non-discriminatory factor permitted by law. Final offer amounts are determined by multiple factors including candidate experience and expertise and may vary from the amounts listed here.

Metropolitan Commercial Bank provides equal employment opportunities to all employees and applicants for employment and prohibits discrimination and harassment of any type without regard to race, color, religion, age, sex, national origin, disability status, genetics, protected veteran status, sexual orientation, gender identity or expression, or any other characteristic protected by federal, state, or local laws.

This applies to all terms and conditions of employment, including recruiting, hiring, placement, promotion, termination, layoff, recall, transfer, leaves of absence, compensation, and training.

MCB maintains a drug free workplace.