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Lead Machine Learning Engineer
Lead Machine Learning EngineerSalesforce • San Francisco, CA, United States
Lead Machine Learning Engineer

Lead Machine Learning Engineer

Salesforce • San Francisco, CA, United States
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  • [job_card.full_time]
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Lead Machine Learning Engineer

Salesforce is the #1 AI CRM, where humans with agents drive customer success together. Here, ambition meets action. Tech meets trust. And innovation isn't a buzzword it's a way of life. The world of work as we know it is changing and we're looking for Trailblazers who are passionate about bettering business and the world through AI, driving innovation, and keeping Salesforce's core values at the heart of it all.

Ready to level-up your career at the company leading workforce transformation in the agentic era? Agentforce is the future of AI, and you are the future of Salesforce.

We are a foundation machine learning platform team within the Trust Intelligence Platform organization with a main focus to build and accelerate scalable and resilient machine learning pipelines across the security engineering organization.

We are looking for a highly motivated, hands-on lead machine learning engineer with a strong business understanding of cybersecurity problems, who acts as a force multiplier security data scientist for our security organization. The lead will not simply build models; they will architect the data-driven strategy for our threat detection capabilities.

Your Impact :

Shape the Defense Strategy : You will own the decision-making processtranslating vague security threats into concrete mathematical problems. By championing a rapid prototyping culture, you will validate hypotheses in days rather than months, ensuring our engineering resources are focused only on high-value detections while killing low-signal ideas early.

Detect the "Unknown Unknowns" : You will lead the evolution of our threat detection, introducing more advanced probabilistic modeling, graph analytics, supervised and unsupervised learning. Your work will expose sophisticated threatssuch as active system intrusions, lateral movement, beaconing, and insider attacksthat evade traditional defenses, directly reducing the organization's risk surface.

Elevate the Organization : You will act as a force multiplier, mentoring junior scientists and engineers, and building the internal tooling, feature stores, and libraries that make the whole team faster. You will influence the broader security engineering roadmap to ensure a closed loop security telemetry that is treated as a first-class citizen.

Operationalize Intelligence : By prioritizing engineering rigor (CI / CD, scalable code) and adversarial resilience, you will deliver production-grade models that the SOC actually trustsminimizing "alert fatigue" and maximizing analyst efficiency.

Required Skills :

Extensive experience (3-5+ years) in data science, with at least 2+ years dedicated to the cybersecurity domain designing, implementing and deploying systems of anomaly detection, clustering, and graph models in production.

Extended practical knowledge and familiarity with security frameworks such as MITRE ATT&CK and OCSF.

Hands-on comfort with high-volume logs and proficiency with Spark / Pyspark, Snowflake, Flink and streaming services such as Apache Kafka

Deep understanding and application of containerization (Docker) and workflow orchestration (Kubernetes, Apache Airflow) for automated ML pipelines.

Mastery of Python programming, including proficiency in leading ML frameworks (TensorFlow, PyTorch) and adherence to software engineering best practices.

Demonstrated success in implementing comprehensive MLOps methodologies, encompassing CI / CD pipelines, testing protocols, and model performance monitoring.

Solid foundation in feature engineering techniques and the implementation of feature stores.

Experience in formulating ML governance policies and ensuring adherence to data security regulations.

Ability to explain complex statistical concepts to non-technical stakeholders and executive leadership.

Proven ability to manage scope, timelines, and stakeholder expectations across multiple organizations.

High degree of autonomy with the ability to look at a vague business problem and structure a data-driven solution without needing a predefined roadmap.

A related technical degree is required.

Preferred Skills :

Masters or PhD in a quantitative field

Expertise in advanced Natural Language Processing (NLP) methodologies.

Experience contributing to open-source security data science tools.

Presentations at major security conferences (Black Hat, DEF CON, BSides) or data conferences.

Background in offensive security (Penetration Testing / Red Teaming) with an "attacker's mindset."

Demonstrated experience conducting research or working collaboratively with Machine Learning (ML) research teams.

Previous experience in a mentoring role for junior engineers.

Track record of publications and / or patents in quantitative disciplines.

When you join Salesforce, you'll be limitless in all areas of your life. Our benefits and resources support you to find balance and be your best. Together, we'll bring the power of Agentforce to organizations of all sizes and deliver amazing experiences that customers love. Apply today to not only shape the future but to redefine what's possible for yourself, for AI, and the world.

Salesforce is an equal opportunity employer and maintains a policy of non-discrimination with all employees and applicants for employment. Any employee or potential employee will be assessed on the basis of merit, competence and qualifications without regard to race, religion, color, national origin, sex, sexual orientation, gender expression or identity, transgender status, age, disability, veteran or marital status, political viewpoint, or other classifications protected by law. This policy applies to current and prospective employees, no matter where they are in their Salesforce employment journey. It also applies to recruiting, hiring, job assignment, compensation, promotion, benefits, training, assessment of job performance, discipline, termination, and everything in between. Recruiting, hiring, and promotion decisions at Salesforce are fair and based on merit. The same goes for compensation, benefits, promotions, transfers, reduction in workforce, recall, training, and education.

In the United States, compensation offered will be determined by factors such as location, job level, job-related knowledge, skills, and experience. Certain roles may be eligible for incentive compensation, equity, and benefits. Salesforce offers a variety of benefits to help you live well including : time off programs, medical, dental, vision, mental health support, paid parental leave, life and disability insurance, 401(k), and an employee stock purchasing program. More details about company benefits can be found at the following link : https : / / www.salesforcebenefits.com.Pursuant to the San Francisco Fair Chance Ordinance and the Los Angeles Fair Chance Initiative for Hiring, Salesforce will consider for employment qualified applicants with arrest and conviction records.

The typical base salary range for this position is $189,100 - $260,100 annually. In select cities within the San Francisco and New York City metropolitan area, the base salary range for this role is $207,800 - $285,800 annually. The range represents base salary only, and does not include company bonus, incentive for sales roles, equity or benefits, as applicable.

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