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Freelance Algorithmic Trading Programmer Jobs in Mississippi

Freelance Algorithmic Trading Programmer information

What are some typical challenges freelance algorithmic trading programmers face when working with clients?

Freelance algorithmic trading programmers often encounter challenges such as aligning with clients' diverse strategies, accommodating rapid changes in trading requirements, and ensuring robust backtesting for different market conditions. Effective communication is key, as clients may have varying levels of technical understanding and expectations regarding performance and risk management. Additionally, freelancers must stay updated on compliance standards and platform-specific APIs, which can differ significantly between projects.

What are the key skills and qualifications needed to thrive as a Freelance Algorithmic Trading Programmer, and why are they important?

To thrive as a Freelance Algorithmic Trading Programmer, you need strong programming skills (often in Python, C++, or Java), a solid understanding of financial markets, and experience with quantitative analysis. Familiarity with trading platforms (like MetaTrader, NinjaTrader, or Interactive Brokers API), backtesting frameworks, and relevant certifications such as CFA or CQF can be highly valuable. Outstanding problem-solving, attention to detail, and effective communication with clients set top performers apart. These skills are crucial for building reliable, profitable trading algorithms and translating complex financial requirements into robust, real-world solutions.

What is the difference between Freelance Algorithmic Trading Programmer vs Quantitative Analyst?

AspectFreelance Algorithmic Trading ProgrammerQuantitative Analyst
CredentialsProgramming skills, trading platform knowledge, sometimes certifications like CQFAdvanced degrees in finance, mathematics, or statistics, certifications like CFA or FRM
Work EnvironmentIndependent, remote, project-basedIn-house or consulting, often office-based
Industry UsageDevelops trading algorithms for clients or personal tradingAnalyzes financial data to inform trading strategies and risk management

While both roles involve quantitative skills and financial markets, Freelance Algorithmic Trading Programmers focus on coding and developing trading algorithms independently, whereas Quantitative Analysts analyze data to support trading decisions within organizations.

What is a Freelance Algorithmic Trading Programmer?

A Freelance Algorithmic Trading Programmer is a professional who designs, develops, and implements trading algorithms for financial markets on a contract or project basis. They use programming languages like Python, C++, or Java to create automated systems that can execute trades based on predefined strategies without human intervention. These programmers often collaborate with traders, investment firms, or hedge funds to build, backtest, and optimize trading algorithms that aim to maximize profits and minimize risks. Working independently, they may also advise clients on best practices, maintain trading infrastructure, and ensure compliance with relevant financial regulations.
What are popular job titles related to Freelance Algorithmic Trading Programmer jobs in Mississippi? For Freelance Algorithmic Trading Programmer jobs in Mississippi, the most frequently searched job titles are:
What job categories do people searching Freelance Algorithmic Trading Programmer jobs in Mississippi look for? The top searched job categories for Freelance Algorithmic Trading Programmer jobs in Mississippi are:

Senior Data Scientist

Accord Technologies Inc.

Jackson, MS • On-site

Contractor

Re-posted 12 days ago


Job description

Senior Data Scientist 
Jackson, MS (Remote)
5 months contract
 
Job Description:

senior data scientist to support a proof-of-concept demonstration using natural language processing and other machine learning methods to improve the intake process.

This work is critical to demonstrate the potential of the latest technology to improve the lives of children at risk.

The Senior Data Scientist will be responsible for overseeing and supporting the development, implementation, and

testing of statistical models, integration of NLP, and refinement and testing of the prototype. In addition, algorithmic

trade-offs will be evaluated, and guidance provided to ensure the State’s objectives are satisfied. The Senior Data

Scientist will work closely with State stakeholders and technical team members to ensure the quality of the results and

that the derived methods are transparent, statistically sound, relevant, and documented.

Key Responsibilities

• Create a Development Framework

o Establish a framework for the execution of technical tasks within the proof-of-concept. The framework will

consist of task breakouts, milestones, and deliverables

o Identify critical milestones related to information, receipt of data, testing, and delivery.

o Identify key risk factors and means of mitigation.

• Current Processes & Technology

o Participate in critical discussions involving current intake workflows, how decisions are made based on

information from the intake process, and the allocation of State labor.

o Lead the development of a new intake process that leverages natural language processing and other machine

learning algorithms.

o Identify the functional blocks and reconcile their contributions to solving the prioritized shortcomings.

o Evaluate architectural and computational implementation trade-offs for each functional block. The evaluation

should consider risk from the standpoints of technical, schedule, and security.

o Evaluate trade-offs of using different data sources, including existing systems, sample data, simulated data, or

other alternatives.

o Document the final approach for transparency.

• Design Review(s)

o Create the framework for the design review process.

o Lead the design review and evaluate

 The functional design with respect to resolving prioritized intake process shortcomings, and the impact on

children and State resources.

 Technical, schedule, data security, and other risk factors.

 Source of data and its usefulness in demonstrating the efficacy of the approach.

 Proposed methods of test and demonstration.

o Documentation of the process for transparency.

• Implementation of Proof-of-Concept

o Oversee the implementation of the prototype by conducting weekly status updates and, when appropriate, gate

reviews.

o Provide guidance when needed to mitigate risk and remove technical or administrative roadblocks.

• Conference Room Demonstration

o During the course of 3-4 days, provide conference room support to demonstrate that shows how the prototype

application can improve child outcomes and reduce State resources.

o Capture key stakeholder comments regarding technical aspects of the application.

• Roadmap

o Contribute to the development of a roadmap that illustrates how the developed technology could be integrated

into the State’s ecosystem of technologies and processes.

• Agile Development Process

o Contribute to the Agile development process to ensure the success of the project.


Qualifications:

• Bachelor’s, Master’s, or Ph.D. in computer science, mathematics, engineering, physics, or related field.

• Have participated in US Federal Gov’t data science programs requiring TS/SCI clearance, delivering solutions

requiring the combination of geospatial disciplines and pattern of life, and Social network connections.

Prior history of designing and building machine learning algorithms from the ground up.

• Experience with making technical trade-offs between algorithmic approaches. based on collective errors,

computational time, scalability, and outcomes.

• Prior success in developing optimal non-rule-based decision-making systems where the inputs are stochastic.

• Successful history of converting social processes and human decision-making into computational models that

yield improved results

Data engineering expertise, with demonstrable experience custom building programs processing in excess of

700 Million records in less than :30min, on a highly frequent, reoccurring basis.

• Proven expertise working with CCWIS data attributes to predict child welfare outcomes, including but not

limited data attribute selection, data clean up and statistical tuning.

• Extensive knowledge of statistical algorithms, machine learning, and adaptive systems.