Full-Time

Machine Learning Operations Engineer 2

Kensho

Kensho

51-200 employees

AI and ML for financial analytics

Compensation Overview

$130k - $175k/yr

+ Annual incentive bonus + Equity plans

Cambridge, MA, USA + 1 more

More locations: New York, NY, USA

In Person

Category
AI & Machine Learning (1)
Required Skills
LLM
Sentry
Bash
Kubernetes
Python
Airflow
Distributed Systems
Git
PyTorch
Machine Learning
Computer Networking
AWS
Prometheus
LangGraph
Terraform
Observability
Reinforcement Learning

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Requirements
  • At least 2 years of experience in machine learning infrastructure, machine learning operations, machine learning engineering, or a similar skill set.
  • Experience managing distributed systems with Kubernetes, including understanding Kubernetes concepts and trade-offs.
  • Understanding of cloud platforms, particularly Amazon Web Services, including Amazon Elastic Kubernetes Service and managed machine learning services such as Amazon Bedrock and Amazon SageMaker.
  • Proficiency in Python.
  • Familiarity with distributed computing frameworks and workflow orchestration, such as Ray and Airflow.
  • Familiarity with software engineering best practices in a machine learning context.
  • Basic understanding of machine learning concepts, large language models, and agents.
  • Ability to debug distributed systems across infrastructure, networking, and application layers.
  • Ability to communicate effectively to drive adoption of new tools and best practices across multiple teams.
Responsibilities
  • Iterate on Kensho’s machine learning processes to develop tools, services, and frameworks that make every stage of the machine learning workflow robust, auditable, and usable.
  • Work closely with machine learning engineers to understand their processes, identify pain points, and form effective solutions.
  • Provide engineers with stable tooling to rapidly experiment and turn research into demonstrable prototypes and mature products.
  • Provide resources and training for machine learning teams on best practices, enabling them to productionize their work for high-value products and services.
  • Evaluate, select, and champion open-source and third-party solutions, drive their adoption across teams, and integrate them into Kensho’s existing platform ecosystem.
  • Ship scalable, efficient, and automated processes for model fine-tuning, reinforcement learning, and evaluation of large language models and agents.
  • Improve large language model and agentic observability to monitor agentic applications in production and detect performance, decay, and drift issues.
  • Track emerging tools and frameworks, promote best practices, and strengthen the team’s technical expertise.
  • Include a funny joke about data quality in the application.
Desired Qualifications
  • Experience with agentic artificial intelligence systems, tools, frameworks, and workflows.
  • Experience running workflows on Ray.
  • Experience with model context protocol server patterns.

Kensho applies artificial intelligence and machine learning to finance and business data. Its tools analyze unstructured data, transcribe and structure audio and text, and provide analytics to reveal insights. A core offering is an LLM-ready API that lets users query S&P Global datasets using natural language and integrate with AI models like GPT and Claude. The platform combines scalable machine intelligence with data enrichment to transform enterprise information for knowledge workers, whether in government or commercial institutions. Kensho differentiates itself by using its data assets from S&P Global, a focus on financial and enterprise analytics, and a scalable API that enables natural-language querying over large datasets and structured outputs. Its goal is to help clients make data-driven decisions by turning complex data into accessible, actionable insights.

Company Size

51-200

Company Stage

Acquired

Total Funding

$17.5M

Headquarters

Cambridge, Massachusetts

Founded

2013

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Simplify Jobs

Simplify's Take

What believers are saying

  • Kensho MCP Apps entered beta in March 2026, embedding charts and tables inside chats.
  • The July 2026 Claude connector expands Kensho's reach across AI-native analyst workflows.
  • Kensho Scribe's latest model cut errors 30%, strengthening transcription adoption in meetings and earnings calls.

What critics are saying

  • S&P Global sunset its public AI Benchmarks in July 2026, reducing product visibility.
  • The July 2026 reorganization recast 2025 and Q1 2026 financials, signaling internal churn.
  • Anthropic, OpenAI, and Bloomberg now compete directly for financial-data assistant mindshare.

What makes Kensho unique

  • Kensho powers S&P Global data inside Claude through remote MCP server support.
  • Its July 2026 Market Intelligence split made Kensho Data the AI delivery layer.
  • Kensho Scribe, Link, and Classify target finance-specific workflows, not generic enterprise search.

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Benefits

Health - 100% employer-paid insurance that covers you and your family... and more

Wellness - 26 weeks paid parental leave, flexible work hours... and more

Growth - 6% 401K match, 20K tuition reimbursement, Knowledge Days... and more

Growth & Insights and Company News

Headcount

6 month growth

14%

1 year growth

14%

2 year growth

14%
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Today Kensho Technologies, Inc. is announcing remote MCP server support and an S&P Global Connector for Claude to simplify this process even further.

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Kensho Technologies, Inc. is excited to introduce the latest update to Kensho Scribe AI, its speech-to-text transcription tool.

VentureBeat
Apr 4th, 2024
S&P Global Launches Groundbreaking Ai Benchmark For Financial Industry

Join us in Atlanta on April 10th and explore the landscape of security workforce. We will explore the vision, benefits, and use cases of AI for security teams. Request an invite here. SP Global, a leading provider of financial intelligence, quietly announced on Wednesday the launch of SP AI Benchmarks by Kensho. This innovative solution aims to set a new standard for evaluating the performance of large language models (LLMs) in complex financial and quantitative applications.Developed by SP Global’s AI-focused division, Kensho, the benchmarking tool assesses an LLM’s ability to handle tasks such as quantitative reasoning, data extraction from financial documents and demonstrating domain-specific knowledge. The results are then displayed on a leaderboard, providing a transparent view of each model’s capabilities.SP AI Benchmarks by Kensho ranks the performance of large language models (LLMs) across key financial and quantitative metrics, including domain knowledge, quantity extraction, and program synthesis